[1] WOLFAARDT A C, UNDERHILL L G, ALTWEGG R, et al. Impact of the treasure oil spill on african penguins spheniscus demersus at dassen island: Case study of a rescue operation[J]. Afr J Mar Sci, 2008, 30(2): 405-419.
[2] BI Y B, HAN L, ZHENG Y F, et al. Lotus-seedpod-bioinspired 3D superhydrophobic diatomite porous ceramics comodified by graphene and carbon nanobelts[J]. ACS App Mater Inter, 2018, 10:27416- 27423.
[3] ZHAOH Y, HONG W, HUANGL A, et al. Advanced sorbents for oil-spill cleanup: Recent advances and future perspectives[J]. Adv Mater, 2016, 28(47): 10459-10490.
[4] ROBERTO N, FLAVIA F, FEDERICO C, et al. Chitosan-derived iron oxide systems for magnetically guided and efficient water purification processes from polycyclic aromatic hydrocarbons[J]. ACS Sustain Chem Eng, 2017, 5(1): 793-801.
[6] CHEN L, GUO Z, LIU W. Outmatching super hydrophobicity: Bio-inspired re-entrant curvature for mighty super amphiphobicity in air[J]. J Mater Chem A, 2017, 5: 14480-14507.
[7] EMELYANENKO A M, BOINOVICH L B, BEZDOMNIKOV A A, et al. Reinforced superhydrophobic coating on silicone rubber for longstanding anti-icing performance in severe conditions[J]. ACS Appl Mater Inter, 2017, 9: 24210-24219.
[9] TANG X, SHEN C, ZHU W, et al. A facile procedure to modify filter paper for oil-water separation[J]. RSC Adv, 2017, 7(48): 30495-30499.
[10] GUO Z, WANG Z. Biomimetic superwettable materials with structural colours[J]. Chem Commun, 2017, 53(97): 12990-13011.
[11] XIA B, LIU H, FAN Y, et al. Novel fabrication of nano functionalized amorphous tungsten oxide coatings with colorful superamphiphobic surface study[J]. Mater Design, 2017, 135(5): 51-61.
[12] ZHU Y, WANG D, JIANG L, et al. Recent progress in developing advanced membranes for emulsified oil/water separation[J]. NPG Asia Mater, 2014, 6(5): e101.
[13] DRELICH J, CHIBOWSKI E, MENG D D, et al. Hydrophilic and superhydrophilic surfaces and materials[J]. Soft Matter, 2011, 7(21): 9804-9828.
[14] LIU K S, TIAN Y, JIANG L. Bio-inspired superoleophobic and smart materials: Design, fabrication, and application[J]. Prog Mater Sci, 2013, 58(4): 503-564.
[15] ZHANG W, SHI Z, ZHANG F, et al. Superhydrophobic and superoleophilic PVDF membranes for effective separation of water-in-oil emulsions with high flux[J]. Adv Mater, 2013, 25(14): 2071-2076.
[20] GUNATILAKE U B, BANDARA J. Efficient removal of oil from oil contaminated water by superhydrophilic and underwater superoleophobic nano/micro structured TiO2 nanofibers coated mesh[J]. Chemosphere, 2017, 171: 134-141.
[21] HOU K, ZENG Y, ZHOU C, et al. Durable underwater superoleophobic PDDA/halloysite nanotubes decorated stainless steel mesh for efficient oil-water separation[J]. Appl Surf Sci, 2017, 416(15): 344-352.
[22] XUE Z, WANG S, LIN L, et al. A novel superhydrophilic and underwater superoleophobic hydrogel-coated mesh for oil/water separation[J]. Adv Mater, 2011, 23(37): 4270-4273.
[23] DENG X, RAN S, HAN L, et al. Foam-gelcasting preparation of high-strength self-reinforced porous mullite ceramics[J]. J Eur Ceram Soc, 2017, 37: 4059-4066.
[24] MATSUNAGA C, FUKUSHIMA M, HYUGA H, et al. Fabrication of porous silica ceramics by gelation-freezing of diatomite slurry[J]. J Eur Ceram Soc, 2017, 37: 5259-5264.
[25] XIONG Q M, CHEN Z, HUANG J T, et al. Preparation, structure and mechanical properties of Sialon ceramics by transition metal-catalyzed nitriding reaction[J]. Rare Metals, 2020, 39: 589-596.
[26] YUAN L, MA B, ZHU Q, et al. Preparation and properties of mullite-bonded porous fibrous mullite ceramics by an epoxy resin gel-casting process[J]. Ceram Int, 2017, 43: 5478-5483.