Skip to main content

2024 | OriginalPaper | Buchkapitel

Carbon Nanomaterial for Oil Spill Clean-Up

verfasst von : Saumya Pandey, Mayank Saxena

Erschienen in: Carbon-Based Nanomaterials

Verlag: Springer Nature Singapore

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

Oil spills are a pressing issue as they impose a risk on the marine ecosystem and have severe economic and social consequences. Conventional methods for oil spill clean-up, such as mechanical containment and chemical dispersants, have limitations regarding efficacy, ecological footprint, and economic viability. Recently, the development of technology has revolutionized new possibilities for more efficient and sustainable oil spill clean-up strategies. Carbon nanomaterials have merged as a promising candidate among advanced materials due to their unique physiochemical properties and diverse applications. Carbon nanomaterials, including carbon nanotubes, graphene, carbon nanofibers, and carbon aerogels, display exceptional superhydrophobicity, chemical stability, high surface area, and mechanical strength, making them exceedingly suited for oil spill remediation. This chapter deals with a comprehensive overview of the carbon nanomaterials application in oil spill clean-up. Also, the various types of carbon nanomaterials and their unique properties that contribute to their effectiveness in oil sorption and separation have been discussed in detail.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
1.
Zurück zum Zitat Abdullah TA, Juzsakova T, Hafad SA, Rasheed RT, Al-Jammal N, Mallah MA, Salman AD, Le PC, Domokos E, Aldulaimi M (2022) Functionalized multi-walled carbon nanotubes for oil spill cleanup from water. Clean Technol Environ Policy 24:519–541CrossRef Abdullah TA, Juzsakova T, Hafad SA, Rasheed RT, Al-Jammal N, Mallah MA, Salman AD, Le PC, Domokos E, Aldulaimi M (2022) Functionalized multi-walled carbon nanotubes for oil spill cleanup from water. Clean Technol Environ Policy 24:519–541CrossRef
2.
Zurück zum Zitat Abidli A, Huang Y, Cherukupally P, Bilton AM, Park CB (2020) Novel separator skimmer for oil spill cleanup and oily wastewater treatment: from conceptual system design to the first pilot-scale prototype development. Environ Technol Innov 18:100598CrossRef Abidli A, Huang Y, Cherukupally P, Bilton AM, Park CB (2020) Novel separator skimmer for oil spill cleanup and oily wastewater treatment: from conceptual system design to the first pilot-scale prototype development. Environ Technol Innov 18:100598CrossRef
3.
Zurück zum Zitat Ainsworth CH, Paris CB, Perlin N, Dornberger LN, Patterson WF III, Chancellor E, Murawski S, Hollander D, Daly K, Romero IC, Coleman F (2018) Impacts of the deepwater horizon oil spill evaluated using an end-to-end ecosystem model. PLoS ONE 13:e0190840PubMedPubMedCentralCrossRef Ainsworth CH, Paris CB, Perlin N, Dornberger LN, Patterson WF III, Chancellor E, Murawski S, Hollander D, Daly K, Romero IC, Coleman F (2018) Impacts of the deepwater horizon oil spill evaluated using an end-to-end ecosystem model. PLoS ONE 13:e0190840PubMedPubMedCentralCrossRef
4.
Zurück zum Zitat Al-Jammal N, Abdullah TA, Juzsakova T, Zsirka B, Cretescu I, Vágvölgyi V, Sebestyén V, Le Phuoc C, Rasheed RT, Domokos E (2020) Functionalized carbon nanotubes for hydrocarbon removal from water. J Environ Chem Eng 8:103570CrossRef Al-Jammal N, Abdullah TA, Juzsakova T, Zsirka B, Cretescu I, Vágvölgyi V, Sebestyén V, Le Phuoc C, Rasheed RT, Domokos E (2020) Functionalized carbon nanotubes for hydrocarbon removal from water. J Environ Chem Eng 8:103570CrossRef
5.
Zurück zum Zitat Alvernia P, Soesilo TE, Herdiansyah H (2021) Social impacts of oil spills towards the people living in coastal areas. In: IOP conference series: earth environ science, vol 802. IOP Publishing, p 012001 Alvernia P, Soesilo TE, Herdiansyah H (2021) Social impacts of oil spills towards the people living in coastal areas. In: IOP conference series: earth environ science, vol 802. IOP Publishing, p 012001
6.
Zurück zum Zitat Ansari MO, Kumar R, Ansari SP, Hassan MS, Alshahrie A, Barakat MA (2019) Nanocarbon aerogel composites. Woodhead Publishing, InNanocarbon and its Composites, pp 1–26CrossRef Ansari MO, Kumar R, Ansari SP, Hassan MS, Alshahrie A, Barakat MA (2019) Nanocarbon aerogel composites. Woodhead Publishing, InNanocarbon and its Composites, pp 1–26CrossRef
7.
Zurück zum Zitat Asghar HMA, Hussain SN, Roberts EPL, Campen AK, Brown NW (2013) Pre-treatment of adsorbents for wastewater treatment using adsorption coupled with electrochemical regeneration. J Ind Eng Chem 19:1689–1676CrossRef Asghar HMA, Hussain SN, Roberts EPL, Campen AK, Brown NW (2013) Pre-treatment of adsorbents for wastewater treatment using adsorption coupled with electrochemical regeneration. J Ind Eng Chem 19:1689–1676CrossRef
8.
Zurück zum Zitat Avila AF, Munhoz VC, de Oliveira AM, Santos MC, Lacerda GR, Gonçalves CP (2014) Nano-based systems for oil spills control and cleanup. J Hazard Mater 272:20–27PubMedCrossRef Avila AF, Munhoz VC, de Oliveira AM, Santos MC, Lacerda GR, Gonçalves CP (2014) Nano-based systems for oil spills control and cleanup. J Hazard Mater 272:20–27PubMedCrossRef
9.
Zurück zum Zitat Baig N, Alghunaimi FI, Dossary HS, Saleh TA (2019) Superhydrophobic and superoleophilic carbon nanofiber grafted polyurethane for oil-water separation. Process Saf Environ Prot 123:327–334CrossRef Baig N, Alghunaimi FI, Dossary HS, Saleh TA (2019) Superhydrophobic and superoleophilic carbon nanofiber grafted polyurethane for oil-water separation. Process Saf Environ Prot 123:327–334CrossRef
10.
Zurück zum Zitat Banerjee D, Das NS, Chattopadhyay KK (2012) Enhancement of field emission and hydrophobic properties of silicon nanowires by chemical vapor deposited carbon nanoflakes coating. Appl Surf Sci 261:223–230CrossRef Banerjee D, Das NS, Chattopadhyay KK (2012) Enhancement of field emission and hydrophobic properties of silicon nanowires by chemical vapor deposited carbon nanoflakes coating. Appl Surf Sci 261:223–230CrossRef
11.
Zurück zum Zitat Barron MG (2012) Ecological impacts of the deepwater horizon oil spill: implications for immunotoxicity. Toxicol Pathol 40:315–320PubMedCrossRef Barron MG (2012) Ecological impacts of the deepwater horizon oil spill: implications for immunotoxicity. Toxicol Pathol 40:315–320PubMedCrossRef
12.
Zurück zum Zitat Bayat A, Aghamiri SF, Moheb A (2008) Oil sorption by synthesized exfoliated graphite (EG). Iran J Chem Eng 5(1):51–64 Bayat A, Aghamiri SF, Moheb A (2008) Oil sorption by synthesized exfoliated graphite (EG). Iran J Chem Eng 5(1):51–64
13.
Zurück zum Zitat ben Hammouda S, Chen Z, An C, Lee K (2021) Recent advances in developing cellulosic sorbent materials for oil spill cleanup: a state-of-the-art review. J Clean Prod 311:127630 ben Hammouda S, Chen Z, An C, Lee K (2021) Recent advances in developing cellulosic sorbent materials for oil spill cleanup: a state-of-the-art review. J Clean Prod 311:127630
14.
Zurück zum Zitat Beyke G, Fleming D (2005) In situ thermal remediation of DNAPL and LNAPL using electrical resistance heating. Remediation 15:5–22CrossRef Beyke G, Fleming D (2005) In situ thermal remediation of DNAPL and LNAPL using electrical resistance heating. Remediation 15:5–22CrossRef
15.
Zurück zum Zitat Bi H, Huang X, Wu X, Cao X, Tan C, Yin Z, Lu X, Sun L, Zhang H (2014) Carbon microbelt aerogel prepared by waste paper: an efficient and recyclable sorbent for oils and organic solvents. Small 10:3544–3550PubMedCrossRef Bi H, Huang X, Wu X, Cao X, Tan C, Yin Z, Lu X, Sun L, Zhang H (2014) Carbon microbelt aerogel prepared by waste paper: an efficient and recyclable sorbent for oils and organic solvents. Small 10:3544–3550PubMedCrossRef
16.
Zurück zum Zitat Brody TM, Bianca PD, Krysa J (2012) Analysis of inland crude oil spill threats, vulnerabilities, and emergency response in the midwest United States. Risk Anal: Int J 32(10):1741–1749CrossRef Brody TM, Bianca PD, Krysa J (2012) Analysis of inland crude oil spill threats, vulnerabilities, and emergency response in the midwest United States. Risk Anal: Int J 32(10):1741–1749CrossRef
17.
Zurück zum Zitat Cao M, Hu Y, Cheng W, Huan S, Bai T, Niu Z, Zhao Y, Yue G, Zhao Y, Han G (2022) Lignin-based multi-scale cellular aerogels assembled from co-electrospun nanofibers for oil/water separation and energy storage. Chem Eng J 436:135233CrossRef Cao M, Hu Y, Cheng W, Huan S, Bai T, Niu Z, Zhao Y, Yue G, Zhao Y, Han G (2022) Lignin-based multi-scale cellular aerogels assembled from co-electrospun nanofibers for oil/water separation and energy storage. Chem Eng J 436:135233CrossRef
18.
Zurück zum Zitat Chakrabarti A, Lu J, Skrabutenas JC, Xu T, Xiao Z, Maguire JA, Hosmane NS (2011) Conversion of carbon dioxide to few-layer graphene. J Mater Chem 21:9491–9493CrossRef Chakrabarti A, Lu J, Skrabutenas JC, Xu T, Xiao Z, Maguire JA, Hosmane NS (2011) Conversion of carbon dioxide to few-layer graphene. J Mater Chem 21:9491–9493CrossRef
19.
Zurück zum Zitat Chen L, Du R, Zhang J, Yi T (2015) Density controlled oil uptake and beyond: from carbon nanotubes to graphene nanoribbon aerogels. J Mat Chem A 3:20547–20553CrossRef Chen L, Du R, Zhang J, Yi T (2015) Density controlled oil uptake and beyond: from carbon nanotubes to graphene nanoribbon aerogels. J Mat Chem A 3:20547–20553CrossRef
20.
Zurück zum Zitat Chen Y, Li Y, Tai YM, N, (2013) Electromagnetic interference shielding efficiency of polyaniline composites filled with graphene decorated with metallic nanoparticles. Compos Sci Technol 80:80–86CrossRef Chen Y, Li Y, Tai YM, N, (2013) Electromagnetic interference shielding efficiency of polyaniline composites filled with graphene decorated with metallic nanoparticles. Compos Sci Technol 80:80–86CrossRef
21.
Zurück zum Zitat Cong HP, Chen JF, Yu SH (2014) Graphene-based macroscopic assemblies and architectures: an emerging material system. Chem Soc Rev 43:7295–7325PubMedCrossRef Cong HP, Chen JF, Yu SH (2014) Graphene-based macroscopic assemblies and architectures: an emerging material system. Chem Soc Rev 43:7295–7325PubMedCrossRef
22.
Zurück zum Zitat de Oliveira EM, Lopes PF, de Oliveira Júnior JG, Junqueira AB, de Oliveira Santos AP, da Silva Lima JA, Malhado AC, Ladle RJ, Campos-Silva JV (2021) Immediate social and economic impacts of a major oil spill on Brazilian coastal fishing communities. Mar Pollut Bull 164:111984CrossRef de Oliveira EM, Lopes PF, de Oliveira Júnior JG, Junqueira AB, de Oliveira Santos AP, da Silva Lima JA, Malhado AC, Ladle RJ, Campos-Silva JV (2021) Immediate social and economic impacts of a major oil spill on Brazilian coastal fishing communities. Mar Pollut Bull 164:111984CrossRef
23.
Zurück zum Zitat Devi N, Kumar R, Chen YS, Singh RK (2023) Carbon-based nanomaterials: carbon nanotube, fullerene, and carbon dots. Nanomaterials. Springer, Singapore, pp 27–57CrossRef Devi N, Kumar R, Chen YS, Singh RK (2023) Carbon-based nanomaterials: carbon nanotube, fullerene, and carbon dots. Nanomaterials. Springer, Singapore, pp 27–57CrossRef
24.
Zurück zum Zitat Dong J, Zeng J, Wang B, Cheng Z, Xu J, Gao W, Chen K (2021) Mechanically flexible carbon aerogel with wavy layers and springboard elastic supporting structure for selective oil/organic solvent recovery. ACS Appl Mater Interfaces 13:15910–15924PubMedCrossRef Dong J, Zeng J, Wang B, Cheng Z, Xu J, Gao W, Chen K (2021) Mechanically flexible carbon aerogel with wavy layers and springboard elastic supporting structure for selective oil/organic solvent recovery. ACS Appl Mater Interfaces 13:15910–15924PubMedCrossRef
25.
Zurück zum Zitat Doshi B, Sillanpää M, Kalliola S (2018) A review of bio-based materials for oil spill treatment. Water Res 135:262–277PubMedCrossRef Doshi B, Sillanpää M, Kalliola S (2018) A review of bio-based materials for oil spill treatment. Water Res 135:262–277PubMedCrossRef
26.
Zurück zum Zitat Fang M, Tang Z, Lu H, Nutt S (2012) Multifunctional superhydrophobic composite films from a synergistic self-organization process. J Mater Chem 22:109–114CrossRef Fang M, Tang Z, Lu H, Nutt S (2012) Multifunctional superhydrophobic composite films from a synergistic self-organization process. J Mater Chem 22:109–114CrossRef
27.
Zurück zum Zitat Gan G, Li X, Fan S, Wang L, Qin M, Yin Z, Chen G (2019) Carbon aerogels for environmental clean‐up. Eur J Inorg Chemistry 2019(27):3126–3141 Gan G, Li X, Fan S, Wang L, Qin M, Yin Z, Chen G (2019) Carbon aerogels for environmental clean‐up. Eur J Inorg Chemistry 2019(27):3126–3141
28.
Zurück zum Zitat Ge B, Zhang Z, Zhu X, Ren G, Men X, Zhou X (2013) A magnetically superhydrophobic bulk material for oil removal. Colloids Surf 429:129–133CrossRef Ge B, Zhang Z, Zhu X, Ren G, Men X, Zhou X (2013) A magnetically superhydrophobic bulk material for oil removal. Colloids Surf 429:129–133CrossRef
29.
Zurück zum Zitat Ge J, Zhao HY, Zhu HW, Huang J, Shi LA, Yu SH (2016) Advanced sorbents for oil-spill cleanup: recent advances and future perspectives. Adv Mater 28(47):10459–10490PubMedCrossRef Ge J, Zhao HY, Zhu HW, Huang J, Shi LA, Yu SH (2016) Advanced sorbents for oil-spill cleanup: recent advances and future perspectives. Adv Mater 28(47):10459–10490PubMedCrossRef
30.
Zurück zum Zitat Ge J, Zhao HY, Zhu HW, Huang J, Shi LA, Yu SH (2016) Advanced sorbents for oil-spill cleanup: recent advances and future perspectives. Adv Mater 28:10459–10490PubMedCrossRef Ge J, Zhao HY, Zhu HW, Huang J, Shi LA, Yu SH (2016) Advanced sorbents for oil-spill cleanup: recent advances and future perspectives. Adv Mater 28:10459–10490PubMedCrossRef
31.
Zurück zum Zitat Ghasemi O, Mehrdadi N, Baghdadi M, Aminzadeh B, Ghaseminejad A (2020) Spilled oil absorption from Caspian sea water by graphene/chitosan nanocomposite. Energy Sources Part A 42:2856–2872CrossRef Ghasemi O, Mehrdadi N, Baghdadi M, Aminzadeh B, Ghaseminejad A (2020) Spilled oil absorption from Caspian sea water by graphene/chitosan nanocomposite. Energy Sources Part A 42:2856–2872CrossRef
32.
Zurück zum Zitat Ghosh S, Webster TJ (2022) Nanotechnological advances for oil spill management: removal, recovery and remediation. In: Advances in oil-water separation. Elsevier, pp 175–194 Ghosh S, Webster TJ (2022) Nanotechnological advances for oil spill management: removal, recovery and remediation. In: Advances in oil-water separation. Elsevier, pp 175–194
33.
Zurück zum Zitat Godeto YG, Ayele A, Ahmed IN, Husen A, Bachheti RK (2023) Medicinal plant-based metabolites in nanoparticles synthesis and their cutting-edge applications: an overview. In: Bachheti RK, Bachheti A (eds) Secondary metabolites from medicinal plants. CRC Press, Boca Raton, USA, pp 1–34 Godeto YG, Ayele A, Ahmed IN, Husen A, Bachheti RK (2023) Medicinal plant-based metabolites in nanoparticles synthesis and their cutting-edge applications: an overview. In: Bachheti RK, Bachheti A (eds) Secondary metabolites from medicinal plants. CRC Press, Boca Raton, USA, pp 1–34
34.
Zurück zum Zitat Gui X, Wei J, Wang K, Cao A, Zhu H, Jia Y, Shu Q, Wu D (2010) Carbon nanotube sponges. Adv Mater 22:617–621PubMedCrossRef Gui X, Wei J, Wang K, Cao A, Zhu H, Jia Y, Shu Q, Wu D (2010) Carbon nanotube sponges. Adv Mater 22:617–621PubMedCrossRef
35.
Zurück zum Zitat Gui X, Zeng Z, Lin Z, Gan Q, Xiang R, Zhu Y, Cao A, Tang Z (2013) Magnetic and highly recyclable macroporous carbon nanotubes for spilled oil sorption and separation. ACS Appl Mater Interfaces 5:5845–5850PubMedCrossRef Gui X, Zeng Z, Lin Z, Gan Q, Xiang R, Zhu Y, Cao A, Tang Z (2013) Magnetic and highly recyclable macroporous carbon nanotubes for spilled oil sorption and separation. ACS Appl Mater Interfaces 5:5845–5850PubMedCrossRef
36.
Zurück zum Zitat Gupta S, Tai NH (2016) Carbon materials as oil sorbents: a review on the synthesis and performance. J Mater Chem A 4:1550–1565CrossRef Gupta S, Tai NH (2016) Carbon materials as oil sorbents: a review on the synthesis and performance. J Mater Chem A 4:1550–1565CrossRef
37.
Zurück zum Zitat Hatami E, Abbaspour A, Dorostkar V (2019) Phytoremediation of a petroleum-polluted soil by native plant species in Lorestan Province. Iran. Environ Sci Pollut Res 26:24323–24330CrossRef Hatami E, Abbaspour A, Dorostkar V (2019) Phytoremediation of a petroleum-polluted soil by native plant species in Lorestan Province. Iran. Environ Sci Pollut Res 26:24323–24330CrossRef
38.
Zurück zum Zitat Hoang AT, Nižetić S, Duong XQ, Rowinski L, Nguyen XP (2021) Advanced super-hydrophobic polymer-based porous absorbents for the treatment of oil-polluted water. Chemosphere 277:130274PubMedCrossRef Hoang AT, Nižetić S, Duong XQ, Rowinski L, Nguyen XP (2021) Advanced super-hydrophobic polymer-based porous absorbents for the treatment of oil-polluted water. Chemosphere 277:130274PubMedCrossRef
39.
Zurück zum Zitat Hong YC, Uhm HS (2006) Superhydrophobicity of a material made from multiwalled carbon nanotubes. Appl Phys Lett 88:244101CrossRef Hong YC, Uhm HS (2006) Superhydrophobicity of a material made from multiwalled carbon nanotubes. Appl Phys Lett 88:244101CrossRef
40.
Zurück zum Zitat Hou X, Zhang R, Fang D (2020) Superelastic, fatigue resistant and heat insulated carbon nanofiber aerogels for piezoresistive stress sensors. Ceram Int 46:2122–2127CrossRef Hou X, Zhang R, Fang D (2020) Superelastic, fatigue resistant and heat insulated carbon nanofiber aerogels for piezoresistive stress sensors. Ceram Int 46:2122–2127CrossRef
41.
Zurück zum Zitat Hristea G, Budrugeac P (2008) Characterization of exfoliated graphite for heavy oil sorption. J Therm Anal 91:817–823CrossRef Hristea G, Budrugeac P (2008) Characterization of exfoliated graphite for heavy oil sorption. J Therm Anal 91:817–823CrossRef
42.
Zurück zum Zitat Hu H, Zhao Z, Gogotsi Y, Qiu J (2014) Compressible carbon nanotube–graphene hybrid aerogels with superhydrophobicity and superoleophilicity for oil sorption. Environ Sci Technol Lett 1:214–220CrossRef Hu H, Zhao Z, Gogotsi Y, Qiu J (2014) Compressible carbon nanotube–graphene hybrid aerogels with superhydrophobicity and superoleophilicity for oil sorption. Environ Sci Technol Lett 1:214–220CrossRef
43.
Zurück zum Zitat Inagaki M, Konno H, Toyoda M, Moriya K, Kihara T (2000) Sorption and recovery of heavy oils by using exfoliated graphite Part II: recovery of heavy oil and recycling of exfoliated graphite. Desalination 128:213–218CrossRef Inagaki M, Konno H, Toyoda M, Moriya K, Kihara T (2000) Sorption and recovery of heavy oils by using exfoliated graphite Part II: recovery of heavy oil and recycling of exfoliated graphite. Desalination 128:213–218CrossRef
44.
Zurück zum Zitat Janqamsari Y, Ashjari M, Niazi Z (2021) Carbon nanotube promoted porous nanocomposite based on PVA and recycled PET fibers for efficient oil spill cleanup applications. Chem Pap 75:3443–3456CrossRef Janqamsari Y, Ashjari M, Niazi Z (2021) Carbon nanotube promoted porous nanocomposite based on PVA and recycled PET fibers for efficient oil spill cleanup applications. Chem Pap 75:3443–3456CrossRef
45.
Zurück zum Zitat Jung YC, Bhushan B (2009) Wetting behavior of water and oil droplets in three-phase interfaces for hydrophobicity/philicity and oleophobicity/philicity. Langmuir 25:14165–14173PubMedCrossRef Jung YC, Bhushan B (2009) Wetting behavior of water and oil droplets in three-phase interfaces for hydrophobicity/philicity and oleophobicity/philicity. Langmuir 25:14165–14173PubMedCrossRef
46.
Zurück zum Zitat Kemp KC, Seema H, Saleh M, Le NH, Mahesh K, Chandra V, Kim KS (2013) Environmental applications using graphene composites: water remediation and gas adsorption. Nanoscale 5:3149–3171PubMedCrossRef Kemp KC, Seema H, Saleh M, Le NH, Mahesh K, Chandra V, Kim KS (2013) Environmental applications using graphene composites: water remediation and gas adsorption. Nanoscale 5:3149–3171PubMedCrossRef
47.
Zurück zum Zitat Kohli K, Bhatt N (2020) Carbon nanotubes—a novel approach to oil spill cleanup. In: Advances in industrial safety: select proceedings of HSFEA. Springer Singapore, pp 73–83 Kohli K, Bhatt N (2020) Carbon nanotubes—a novel approach to oil spill cleanup. In: Advances in industrial safety: select proceedings of HSFEA. Springer Singapore, pp 73–83
48.
Zurück zum Zitat Kosynkin DV, Higginbotham AL, Sinitskii A, Lomeda JR, Dimiev A, Price BK, Tour JM (2009) Longitudinal unzipping of carbon nanotubes to form graphene nanoribbons. Nature 458(7240):872–876PubMedCrossRef Kosynkin DV, Higginbotham AL, Sinitskii A, Lomeda JR, Dimiev A, Price BK, Tour JM (2009) Longitudinal unzipping of carbon nanotubes to form graphene nanoribbons. Nature 458(7240):872–876PubMedCrossRef
49.
Zurück zum Zitat Lee JS, Park GS, Kim ST, Liu M, Cho J (2013) A highly efficient electrocatalyst for the oxygen reduction reaction: N-doped ketjenblack incorporated into Fe/Fe3C-functionalized melamine foam. Angew Chem Int Ed 52:1026–1030CrossRef Lee JS, Park GS, Kim ST, Liu M, Cho J (2013) A highly efficient electrocatalyst for the oxygen reduction reaction: N-doped ketjenblack incorporated into Fe/Fe3C-functionalized melamine foam. Angew Chem Int Ed 52:1026–1030CrossRef
50.
Zurück zum Zitat Li S, Warzywoda J, Wang S, Ren G (2017) Fan Z bacterial cellulose derived carbon nanofiber aerogel with lithium polysulfide catholyte for lithium–sulfur batteries. Carbon 1(124):212–218CrossRef Li S, Warzywoda J, Wang S, Ren G (2017) Fan Z bacterial cellulose derived carbon nanofiber aerogel with lithium polysulfide catholyte for lithium–sulfur batteries. Carbon 1(124):212–218CrossRef
51.
Zurück zum Zitat Lin Y, Ehlert GJ, Bukowsky C, Sodano HA (2011) Superhydrophobic functionalized graphene aerogels. ACS Appl Mater Interfaces 3:2200–2203PubMedCrossRef Lin Y, Ehlert GJ, Bukowsky C, Sodano HA (2011) Superhydrophobic functionalized graphene aerogels. ACS Appl Mater Interfaces 3:2200–2203PubMedCrossRef
52.
Zurück zum Zitat Liu H, Sha W, Cooper AT, Fan M (2009) Preparation and characterization of a novel silica aerogel as adsorbent for toxic organic compounds. Colloids Surf A 347:38–44CrossRef Liu H, Sha W, Cooper AT, Fan M (2009) Preparation and characterization of a novel silica aerogel as adsorbent for toxic organic compounds. Colloids Surf A 347:38–44CrossRef
53.
Zurück zum Zitat Liu S, Wang S, Wang H, Lv C, Miao Y, Chen L, Yang S (2021) Gold nanoparticles modified graphene foam with superhydrophobicity and superoleophilicity for oil-water separation. Sci Total Environ 758:143660PubMedCrossRef Liu S, Wang S, Wang H, Lv C, Miao Y, Chen L, Yang S (2021) Gold nanoparticles modified graphene foam with superhydrophobicity and superoleophilicity for oil-water separation. Sci Total Environ 758:143660PubMedCrossRef
54.
Zurück zum Zitat Liu Z, Liu J, Zhu Q, Wu W (2012) The weathering of oil after the deepwater horizon oil spill: insights from the chemical composition of the oil from the sea surface, salt marshes and sediments. Environ Res Lett 7:035302CrossRef Liu Z, Liu J, Zhu Q, Wu W (2012) The weathering of oil after the deepwater horizon oil spill: insights from the chemical composition of the oil from the sea surface, salt marshes and sediments. Environ Res Lett 7:035302CrossRef
55.
Zurück zum Zitat Lorevice MV, Claro PI, Aleixo NA, Martins LS, Maia MT, Oliveira AP, Martinez DS, Gouveia RF (2023) Designing 3D fractal morphology of eco-friendly nanocellulose-based composite aerogels for water remediation. Chem Eng J 462:142166CrossRef Lorevice MV, Claro PI, Aleixo NA, Martins LS, Maia MT, Oliveira AP, Martinez DS, Gouveia RF (2023) Designing 3D fractal morphology of eco-friendly nanocellulose-based composite aerogels for water remediation. Chem Eng J 462:142166CrossRef
56.
Zurück zum Zitat Maleki H (2016) Recent advances in aerogels for environmental remediation applications: a review. Chem Eng J 300:98–118CrossRef Maleki H (2016) Recent advances in aerogels for environmental remediation applications: a review. Chem Eng J 300:98–118CrossRef
57.
Zurück zum Zitat Mehmood A, Khan FS, Mubarak NM, Mazari SA, Jatoi AS, Khalid M, Tan YH, Karri RR, Walvekar R, Abdullah EC, Nizamuddin S (2012) Carbon and polymer-based magnetic nanocomposites for oil-spill remediation—a comprehensive review. Environ Sci Pollut Res 28:54477–54496CrossRef Mehmood A, Khan FS, Mubarak NM, Mazari SA, Jatoi AS, Khalid M, Tan YH, Karri RR, Walvekar R, Abdullah EC, Nizamuddin S (2012) Carbon and polymer-based magnetic nanocomposites for oil-spill remediation—a comprehensive review. Environ Sci Pollut Res 28:54477–54496CrossRef
58.
Zurück zum Zitat Mishra S, Chauhan G, Verma S, Singh U (2022) The emergence of nanotechnology in mitigating petroleum oil spills. Mar Pollut Bull 178:113609PubMedCrossRef Mishra S, Chauhan G, Verma S, Singh U (2022) The emergence of nanotechnology in mitigating petroleum oil spills. Mar Pollut Bull 178:113609PubMedCrossRef
59.
Zurück zum Zitat Neelamegan H, Yang DK, Lee GJ, Anandan S, Wu JJ (2020) Synthesis of magnetite nanoparticles anchored cellulose and lignin-based carbon nanotube composites for rapid oil spill cleanup. Mater Today Commun 22:100746CrossRef Neelamegan H, Yang DK, Lee GJ, Anandan S, Wu JJ (2020) Synthesis of magnetite nanoparticles anchored cellulose and lignin-based carbon nanotube composites for rapid oil spill cleanup. Mater Today Commun 22:100746CrossRef
60.
Zurück zum Zitat Nguyen DD, Tai NH, Lee SB, Kuo WS (2012) Superhydrophobic and superoleophilic properties of graphene-based sponges fabricated using a facile dip coating method. Energy Environ Sci 5:7908–7912CrossRef Nguyen DD, Tai NH, Lee SB, Kuo WS (2012) Superhydrophobic and superoleophilic properties of graphene-based sponges fabricated using a facile dip coating method. Energy Environ Sci 5:7908–7912CrossRef
61.
Zurück zum Zitat Okoh E, Yelebe ZR, Oruabena B, Nelson ES, Indiamaowei OP (2020) Clean-up of crude oil-contaminated soils: bioremediation option. Int J Environ Technol 17:1185–1198CrossRef Okoh E, Yelebe ZR, Oruabena B, Nelson ES, Indiamaowei OP (2020) Clean-up of crude oil-contaminated soils: bioremediation option. Int J Environ Technol 17:1185–1198CrossRef
62.
Zurück zum Zitat Pegg S, Zabbey N (2013) Oil and water: the Bodo spills and the destruction of traditional livelihood structures in the Niger Delta. Community Dev J 48:391–405CrossRef Pegg S, Zabbey N (2013) Oil and water: the Bodo spills and the destruction of traditional livelihood structures in the Niger Delta. Community Dev J 48:391–405CrossRef
63.
Zurück zum Zitat Perfumo A, Rancich I, Banat IM (2010) Possibilities and challenges for biosurfactants use in petroleum industry. Biosurfactants 135–145 Perfumo A, Rancich I, Banat IM (2010) Possibilities and challenges for biosurfactants use in petroleum industry. Biosurfactants 135–145
64.
Zurück zum Zitat Pete AJ, Bharti B, Benton MG (2021) Nano-enhanced bioremediation for oil spills: a review. ACS ES&T Eng 1:928–946CrossRef Pete AJ, Bharti B, Benton MG (2021) Nano-enhanced bioremediation for oil spills: a review. ACS ES&T Eng 1:928–946CrossRef
65.
Zurück zum Zitat Piperopoulos E, Calabrese L, Mastronardo E, Milone C, Proverbio E (2020) Carbon-based sponges for oil spill recovery. In: Carbon nanomaterials for agri-food and environmental applications. Elsevier, pp 155–175 Piperopoulos E, Calabrese L, Mastronardo E, Milone C, Proverbio E (2020) Carbon-based sponges for oil spill recovery. In: Carbon nanomaterials for agri-food and environmental applications. Elsevier, pp 155–175
66.
Zurück zum Zitat Placke T, Siozios V, Schmitz R, Lux SF, Bieker P, Colle C, Meyer HW, Passerini S, Winter M (2012) Influence of graphite surface modifications on the ratio of basal plane to “non-basal plane” surface area and on the anode performance in lithium-ion batteries. J Power Sources 200:83–91CrossRef Placke T, Siozios V, Schmitz R, Lux SF, Bieker P, Colle C, Meyer HW, Passerini S, Winter M (2012) Influence of graphite surface modifications on the ratio of basal plane to “non-basal plane” surface area and on the anode performance in lithium-ion batteries. J Power Sources 200:83–91CrossRef
67.
Zurück zum Zitat Qiang F, Hu LL, Gong LX, Zhao L, Li SN, Tang LC (2018) Facile synthesis of super-hydrophobic, electrically conductive and mechanically flexible functionalized graphene nanoribbon/polyurethane sponge for efficient oil/water separation at static and dynamic states. Chem Eng J 334:2154–2166CrossRef Qiang F, Hu LL, Gong LX, Zhao L, Li SN, Tang LC (2018) Facile synthesis of super-hydrophobic, electrically conductive and mechanically flexible functionalized graphene nanoribbon/polyurethane sponge for efficient oil/water separation at static and dynamic states. Chem Eng J 334:2154–2166CrossRef
68.
Zurück zum Zitat Qiao K, Tian W, Bai J, Wang L, Zhao J, Du Z, Gong X (2019) Application of magnetic adsorbents based on iron oxide nanoparticles for oil spill remediation: a review. J Taiwan Inst Chem Eng 97:227–236CrossRef Qiao K, Tian W, Bai J, Wang L, Zhao J, Du Z, Gong X (2019) Application of magnetic adsorbents based on iron oxide nanoparticles for oil spill remediation: a review. J Taiwan Inst Chem Eng 97:227–236CrossRef
69.
Zurück zum Zitat Quintero L, Ponnapati R, Felipe MJ (2017) Cleanup of organic and inorganic wellbore deposits using microemulsion formulations: laboratory development and field applications. In: Offshore technology conference, OnePetro Quintero L, Ponnapati R, Felipe MJ (2017) Cleanup of organic and inorganic wellbore deposits using microemulsion formulations: laboratory development and field applications. In: Offshore technology conference, OnePetro
70.
Zurück zum Zitat Rafiee J, Rafiee MA, Yu ZZ, Koratkar N (2010) Superhydrophobic to superhydrophilic wetting control in graphene films. Adv Mater 22:2151–2154PubMedCrossRef Rafiee J, Rafiee MA, Yu ZZ, Koratkar N (2010) Superhydrophobic to superhydrophilic wetting control in graphene films. Adv Mater 22:2151–2154PubMedCrossRef
71.
Zurück zum Zitat Rahmani Z, Samadi MT, Kazemi A, Rashidi AM, Rahmani AR (2017) Nanoporous graphene and graphene oxide-coated polyurethane sponge as a highly efficient, superhydrophobic, and reusable oil spill absorbent. J Environ Chem Eng 5:5025–5032CrossRef Rahmani Z, Samadi MT, Kazemi A, Rashidi AM, Rahmani AR (2017) Nanoporous graphene and graphene oxide-coated polyurethane sponge as a highly efficient, superhydrophobic, and reusable oil spill absorbent. J Environ Chem Eng 5:5025–5032CrossRef
72.
Zurück zum Zitat Ramos SC, Vasconcelos G, Antunes EF, Lobo AO, Trava-Airoldi VJ, Corat EJ (2010) CO2 laser treatment for stabilization of the superhydrophobicity of carbon nanotube surfaces. J Vac Sci Technol B 28:1153–1157CrossRef Ramos SC, Vasconcelos G, Antunes EF, Lobo AO, Trava-Airoldi VJ, Corat EJ (2010) CO2 laser treatment for stabilization of the superhydrophobicity of carbon nanotube surfaces. J Vac Sci Technol B 28:1153–1157CrossRef
73.
Zurück zum Zitat Reddy CM, Eglinton TI, Hounshell A, White HK, Xu L, Gaines RB, Frysinger GS (2002) The West Falmouth oil spill after thirty years: the persistence of petroleum hydrocarbons in marsh sediments. Environ Sci Technol 36:4754–4760PubMedCrossRef Reddy CM, Eglinton TI, Hounshell A, White HK, Xu L, Gaines RB, Frysinger GS (2002) The West Falmouth oil spill after thirty years: the persistence of petroleum hydrocarbons in marsh sediments. Environ Sci Technol 36:4754–4760PubMedCrossRef
74.
Zurück zum Zitat Sam EK, Liu J, Lv X (2021) Surface engineering materials of superhydrophobic sponges for oil/water separation: a review. Ind Eng Chem Res 60:2353–2364CrossRef Sam EK, Liu J, Lv X (2021) Surface engineering materials of superhydrophobic sponges for oil/water separation: a review. Ind Eng Chem Res 60:2353–2364CrossRef
75.
Zurück zum Zitat Shayesteh H, Khosrowshahi MS, Mashhadimoslem H, Maleki F, Rabbani Y, Emrooz HB (2023) Durable superhydrophobic/superoleophilic melamine foam based on biomass-derived porous carbon and multi-walled carbon nanotube for oil/water separation. Sci Rep 13:4515PubMedPubMedCentralCrossRef Shayesteh H, Khosrowshahi MS, Mashhadimoslem H, Maleki F, Rabbani Y, Emrooz HB (2023) Durable superhydrophobic/superoleophilic melamine foam based on biomass-derived porous carbon and multi-walled carbon nanotube for oil/water separation. Sci Rep 13:4515PubMedPubMedCentralCrossRef
76.
Zurück zum Zitat Siddiqa A, Shahid A, Gill R (2015) Silica decorated CNTs sponge for selective removal of toxic contaminants and oil spills from water. J Environ Chem Eng 3:892–897CrossRef Siddiqa A, Shahid A, Gill R (2015) Silica decorated CNTs sponge for selective removal of toxic contaminants and oil spills from water. J Environ Chem Eng 3:892–897CrossRef
77.
Zurück zum Zitat Singh B, Kumar S, Kishore B, Narayanan TN (2020) Magnetic scaffolds in oil spill applications. Environ Sci Water Res Technol 6:436–463CrossRef Singh B, Kumar S, Kishore B, Narayanan TN (2020) Magnetic scaffolds in oil spill applications. Environ Sci Water Res Technol 6:436–463CrossRef
78.
Zurück zum Zitat Soares MO, Teixeira CE, Bezerra LE, Rabelo EF, Castro IB, Cavalcante RM (2022) The most extensive oil spill registered in tropical oceans (Brazil): the balance sheet of a disaster. Environ Sci Pollut Res 29:19869–19877CrossRef Soares MO, Teixeira CE, Bezerra LE, Rabelo EF, Castro IB, Cavalcante RM (2022) The most extensive oil spill registered in tropical oceans (Brazil): the balance sheet of a disaster. Environ Sci Pollut Res 29:19869–19877CrossRef
79.
Zurück zum Zitat Sun S, Tang S, Chang X, Wang N, Wang D, Liu T, Lei Y, Zhu Y (2019) A bifunctional melamine sponge decorated with silver-reduced graphene oxide nanocomposite for oil-water separation and antibacterial applications. Appl Surf Sci 4731049–4731061 Sun S, Tang S, Chang X, Wang N, Wang D, Liu T, Lei Y, Zhu Y (2019) A bifunctional melamine sponge decorated with silver-reduced graphene oxide nanocomposite for oil-water separation and antibacterial applications. Appl Surf Sci 4731049–4731061
80.
Zurück zum Zitat Sun Y, Xu H, Zhao Z, Zhang L, Ma L, Zhao G, Song G, Li X (2021) Investigation of carbon nanotube grafted graphene oxide hybrid aerogel for polystyrene composites with reinforced mechanical performance. Polymers 13:735PubMedPubMedCentralCrossRef Sun Y, Xu H, Zhao Z, Zhang L, Ma L, Zhao G, Song G, Li X (2021) Investigation of carbon nanotube grafted graphene oxide hybrid aerogel for polystyrene composites with reinforced mechanical performance. Polymers 13:735PubMedPubMedCentralCrossRef
81.
Zurück zum Zitat Tao G, Zhang L, Hua Z, Chen Y, Guo L, Zhang J, Shu Z, Gao J, Chen H, Wu W, Liu Z, Shi J (2014) Highly efficient adsorbents based on hierarchically macro/mesoporous carbon monoliths with strong hydrophobicity. Carbon 66:547–559 Tao G, Zhang L, Hua Z, Chen Y, Guo L, Zhang J, Shu Z, Gao J, Chen H, Wu W, Liu Z, Shi J (2014) Highly efficient adsorbents based on hierarchically macro/mesoporous carbon monoliths with strong hydrophobicity. Carbon 66:547–559
82.
Zurück zum Zitat Tayeb AM, Farouq R, Mohamed OA, Tony MA (2020) Oil spill clean-up using combined sorbents: a comparative investigation and design aspects. Int J Environ Anal Chem 100:311–323CrossRef Tayeb AM, Farouq R, Mohamed OA, Tony MA (2020) Oil spill clean-up using combined sorbents: a comparative investigation and design aspects. Int J Environ Anal Chem 100:311–323CrossRef
83.
Zurück zum Zitat Tolaka W, Wardah W, Rahmawati R (2013) Sifat Fisik Tanah Pada Hutan Primer, Agroforestri dan Kebun Kakao di SUBDAS Wera Saluopa Desa Leboni Kecamatan Pamona Puselemba Kabupaten Poso. Jurnal Warta Rimba 1 Tolaka W, Wardah W, Rahmawati R (2013) Sifat Fisik Tanah Pada Hutan Primer, Agroforestri dan Kebun Kakao di SUBDAS Wera Saluopa Desa Leboni Kecamatan Pamona Puselemba Kabupaten Poso. Jurnal Warta Rimba 1
84.
Zurück zum Zitat Toyoda M, Aizawa J, Inagaki M (1998) Sorption and recovery of heavy oil by using exfoliated graphite. Desalination 115:199–201CrossRef Toyoda M, Aizawa J, Inagaki M (1998) Sorption and recovery of heavy oil by using exfoliated graphite. Desalination 115:199–201CrossRef
85.
Zurück zum Zitat Toyoda M, Inagaki M (2000) Heavy oil sorption using exfoliated graphite: new application of exfoliated graphite to protect heavy oil pollution. Carbon 38:199–210CrossRef Toyoda M, Inagaki M (2000) Heavy oil sorption using exfoliated graphite: new application of exfoliated graphite to protect heavy oil pollution. Carbon 38:199–210CrossRef
86.
Zurück zum Zitat Toyoda M, Moriya K, Aizawa JI, Konno H, Inagaki M (2000) Sorption and recovery of heavy oils by using exfoliated graphite Part I: maximum sorption capacity. Desalination 128(3):205–211CrossRef Toyoda M, Moriya K, Aizawa JI, Konno H, Inagaki M (2000) Sorption and recovery of heavy oils by using exfoliated graphite Part I: maximum sorption capacity. Desalination 128(3):205–211CrossRef
87.
Zurück zum Zitat Tsai LW, Tai NH (2014) Enhancing the electrical properties of a flexible transparent graphene-based field-effect transistor using electropolished copper foil for graphene growth. ACS Appl Mater Interfaces 6:10489–10496PubMedCrossRef Tsai LW, Tai NH (2014) Enhancing the electrical properties of a flexible transparent graphene-based field-effect transistor using electropolished copper foil for graphene growth. ACS Appl Mater Interfaces 6:10489–10496PubMedCrossRef
88.
Zurück zum Zitat Vickery JL, Patil AJ, Mann S (2009) Fabrication of graphene–polymer nanocomposites with higher-order three-dimensional architectures. Adv Mater 21:2180–2184CrossRef Vickery JL, Patil AJ, Mann S (2009) Fabrication of graphene–polymer nanocomposites with higher-order three-dimensional architectures. Adv Mater 21:2180–2184CrossRef
89.
Zurück zum Zitat Viesser JA, Sugai-Guerios MH, Malucelli LC, Pincerati MR, Karp SG, Maranho LT (2020) Petroleum-tolerant rhizospheric bacteria: Isolation, characterization and bioremediation potential. Sci Rep 10:2060CrossRef Viesser JA, Sugai-Guerios MH, Malucelli LC, Pincerati MR, Karp SG, Maranho LT (2020) Petroleum-tolerant rhizospheric bacteria: Isolation, characterization and bioremediation potential. Sci Rep 10:2060CrossRef
90.
Zurück zum Zitat Wan W, Zhang R, Li W, Liu H, Lin Y, Li L, Zhou Y (2016) Graphene–carbon nanotube aerogel as an ultra-light, compressible and recyclable highly efficient absorbent for oil and dyes. Environ Sci Nano 3:107–113CrossRef Wan W, Zhang R, Li W, Liu H, Lin Y, Li L, Zhou Y (2016) Graphene–carbon nanotube aerogel as an ultra-light, compressible and recyclable highly efficient absorbent for oil and dyes. Environ Sci Nano 3:107–113CrossRef
91.
Zurück zum Zitat Wang CF, Lin SJ (2013) Robust superhydrophobic/superoleophilic sponge for effective continuous absorption and expulsion of oil pollutants from water. ACS Appl Mater Interfaces 5:8861–8864PubMedCrossRef Wang CF, Lin SJ (2013) Robust superhydrophobic/superoleophilic sponge for effective continuous absorption and expulsion of oil pollutants from water. ACS Appl Mater Interfaces 5:8861–8864PubMedCrossRef
92.
Zurück zum Zitat Wang L, Fu X, Chang E, Wu H, Zhang K, Lei X, Zhang R, Qi X, Yang Y (2014) Preparation and its adsorptive property of modified expanded graphite nanomaterials. J Chem Wang L, Fu X, Chang E, Wu H, Zhang K, Lei X, Zhang R, Qi X, Yang Y (2014) Preparation and its adsorptive property of modified expanded graphite nanomaterials. J Chem
93.
Zurück zum Zitat Wei T, Fan Z, Luo G, Zheng C, Xie D (2009) A rapid and efficient method to prepare exfoliated graphite by microwave irradiation. Carbon 47:337–339CrossRef Wei T, Fan Z, Luo G, Zheng C, Xie D (2009) A rapid and efficient method to prepare exfoliated graphite by microwave irradiation. Carbon 47:337–339CrossRef
94.
Zurück zum Zitat Won YJ, Jang S, Jung N, Kwon Y, Moon SY, Nho H, Yoo SJ (2019) Ten years after the oil spill in Taean: the recovery of the ecosystem, the life of women, and the community. Asian Women 35:1–22CrossRef Won YJ, Jang S, Jung N, Kwon Y, Moon SY, Nho H, Yoo SJ (2019) Ten years after the oil spill in Taean: the recovery of the ecosystem, the life of women, and the community. Asian Women 35:1–22CrossRef
95.
Zurück zum Zitat Wu L, Liu J, Reddy BR, Zhou J (2022) Preparation of coal-based carbon nanotubes using catalytical pyrolysis: a brief review. Fuel Process Technol 229:107171CrossRef Wu L, Liu J, Reddy BR, Zhou J (2022) Preparation of coal-based carbon nanotubes using catalytical pyrolysis: a brief review. Fuel Process Technol 229:107171CrossRef
96.
Zurück zum Zitat Wu ZY, Li C, Liang HW, Zhang YN, Wang X, Chen JF, Yu SH (2014) Carbon nanofiber aerogels for emergent cleanup of oil spillage and chemical leakage under harsh conditions. Sci Rep 4:4079PubMedPubMedCentralCrossRef Wu ZY, Li C, Liang HW, Zhang YN, Wang X, Chen JF, Yu SH (2014) Carbon nanofiber aerogels for emergent cleanup of oil spillage and chemical leakage under harsh conditions. Sci Rep 4:4079PubMedPubMedCentralCrossRef
97.
Zurück zum Zitat Xin CU, Changhe LI, Wenfeng DI, Yun CH, Cong MA, Xuefeng XU, Bo LI, Dazhong WA, Li HN, Zhang Y, Zafar SA (2022) Minimum quantity lubrication machining of aeronautical materials using carbon group nanolubricant: from mechanisms to application. Chinese J Aeronaut 35:85–112CrossRef Xin CU, Changhe LI, Wenfeng DI, Yun CH, Cong MA, Xuefeng XU, Bo LI, Dazhong WA, Li HN, Zhang Y, Zafar SA (2022) Minimum quantity lubrication machining of aeronautical materials using carbon group nanolubricant: from mechanisms to application. Chinese J Aeronaut 35:85–112CrossRef
98.
Zurück zum Zitat Yadav KK, Singh JK, Gupta N, Kumar VJ (2017) A review of nano bioremediation technologies for environmental cleanup: a novel biological approach. J Mater Environ Sci 8:740–757 Yadav KK, Singh JK, Gupta N, Kumar VJ (2017) A review of nano bioremediation technologies for environmental cleanup: a novel biological approach. J Mater Environ Sci 8:740–757
99.
Zurück zum Zitat Yang M, Zhao N, Cui Y, Gao W, Zhao Q, Gao C, Bai H, Xie T (2017) Biomimetic architectured graphene aerogel with exceptional strength and resilience. ACS Nano 11:6817–6824PubMedCrossRef Yang M, Zhao N, Cui Y, Gao W, Zhao Q, Gao C, Bai H, Xie T (2017) Biomimetic architectured graphene aerogel with exceptional strength and resilience. ACS Nano 11:6817–6824PubMedCrossRef
100.
Zurück zum Zitat Yang Y, Liu Z, Huang J, Wang C (2015) Multifunctional, robust sponges by a simple adsorption–combustion method. J Mat Chem A 3:5875–5881CrossRef Yang Y, Liu Z, Huang J, Wang C (2015) Multifunctional, robust sponges by a simple adsorption–combustion method. J Mat Chem A 3:5875–5881CrossRef
101.
Zurück zum Zitat Yu M (2013) Theoretical and experimental studies of droplets wetting on micro/nano-fibrous materials and their applications in oil-water separation (Doctoral dissertation, North Dakota State University) Yu M (2013) Theoretical and experimental studies of droplets wetting on micro/nano-fibrous materials and their applications in oil-water separation (Doctoral dissertation, North Dakota State University)
102.
Zurück zum Zitat Yue X, Zhang R, Zhang F, Wang L (2010) Decomposition of crude oil absorbed into expanded graphite/TiO2/NiO composites. Desalination 252:163–166CrossRef Yue X, Zhang R, Zhang F, Wang L (2010) Decomposition of crude oil absorbed into expanded graphite/TiO2/NiO composites. Desalination 252:163–166CrossRef
103.
Zurück zum Zitat Zamparas M, Tzivras D, Dracopoulos V, Ioannides T (2020) Application of sorbents for oil spill cleanup focusing on natural-based modified materials: a review. Molecules 25(19):4522PubMedPubMedCentralCrossRef Zamparas M, Tzivras D, Dracopoulos V, Ioannides T (2020) Application of sorbents for oil spill cleanup focusing on natural-based modified materials: a review. Molecules 25(19):4522PubMedPubMedCentralCrossRef
104.
Zurück zum Zitat Zhan W, Yu S, Gao L, Wang F, Fu X, Sui G, Yang X (2018) Bioinspired assembly of carbon nanotube into graphene aerogel with “cabbagelike” hierarchical porous structure for highly efficient organic pollutants cleanup. ACS Appl Mater Interfaces 10:1093–1103PubMedCrossRef Zhan W, Yu S, Gao L, Wang F, Fu X, Sui G, Yang X (2018) Bioinspired assembly of carbon nanotube into graphene aerogel with “cabbagelike” hierarchical porous structure for highly efficient organic pollutants cleanup. ACS Appl Mater Interfaces 10:1093–1103PubMedCrossRef
105.
Zurück zum Zitat Zhang W, Wang J, Han X, Li L, Liu E, Lu C (2021) Carbon nanotubes and polydopamine modified poly (dimethylsiloxane) sponges for efficient oil–water separation. Materials 14:2431PubMedPubMedCentralCrossRef Zhang W, Wang J, Han X, Li L, Liu E, Lu C (2021) Carbon nanotubes and polydopamine modified poly (dimethylsiloxane) sponges for efficient oil–water separation. Materials 14:2431PubMedPubMedCentralCrossRef
106.
Zurück zum Zitat Zhao H, Wang Q, Chen Y, Tian Q, Zhao G (2017) Efficient removal of dimethyl phthalate with activated iron-doped carbon aerogel through an integrated adsorption and electro-Fenton oxidation process. Carbon 124:111–122CrossRef Zhao H, Wang Q, Chen Y, Tian Q, Zhao G (2017) Efficient removal of dimethyl phthalate with activated iron-doped carbon aerogel through an integrated adsorption and electro-Fenton oxidation process. Carbon 124:111–122CrossRef
107.
Zurück zum Zitat Zhu K, Shang YY, Sun PZ, Li Z, Li XM, Wei JQ, Wang KL, Wu DH, Cao AY, Zhu HW (2013) Oil spill cleanup from seawater by carbon nanotube sponges. Front Mater Sci 7:170–176CrossRef Zhu K, Shang YY, Sun PZ, Li Z, Li XM, Wei JQ, Wang KL, Wu DH, Cao AY, Zhu HW (2013) Oil spill cleanup from seawater by carbon nanotube sponges. Front Mater Sci 7:170–176CrossRef
108.
Zurück zum Zitat Zhu L, Xiu Y, Xu J, Tamirisa PA, Hess DW, Wong CP (2005) Superhydrophobicity on two-tier rough surfaces fabricated by controlled growth of aligned carbon nanotube arrays coated with fluorocarbon. Langmuir 21:11208–11212PubMedCrossRef Zhu L, Xiu Y, Xu J, Tamirisa PA, Hess DW, Wong CP (2005) Superhydrophobicity on two-tier rough surfaces fabricated by controlled growth of aligned carbon nanotube arrays coated with fluorocarbon. Langmuir 21:11208–11212PubMedCrossRef
Metadaten
Titel
Carbon Nanomaterial for Oil Spill Clean-Up
verfasst von
Saumya Pandey
Mayank Saxena
Copyright-Jahr
2024
Verlag
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-97-0240-4_15

    Marktübersichten

    Die im Laufe eines Jahres in der „adhäsion“ veröffentlichten Marktübersichten helfen Anwendern verschiedenster Branchen, sich einen gezielten Überblick über Lieferantenangebote zu verschaffen.