Chemical Industry and Engineering Progress ›› 2021, Vol. 40 ›› Issue (3): 1395-1412.DOI: 10.16085/j.issn.1000-6613.2020-0630
• Industrial catalysis • Previous Articles Next Articles
Received:
2020-04-21
Online:
2021-03-17
Published:
2021-03-05
Contact:
QI Ronghui
通讯作者:
綦戎辉
作者简介:
崔卓安(1996—),男,硕士研究生,研究方向为催化剂制备及性能。E-mail:基金资助:
CLC Number:
CUI Zhuoan, QI Ronghui. Research progress in the application of electrospinning technology in the preparation of electrocatalysts and the carrier materials[J]. Chemical Industry and Engineering Progress, 2021, 40(3): 1395-1412.
崔卓安, 綦戎辉. 应用静电纺丝技术的电催化剂及载体材料制备研究进展[J]. 化工进展, 2021, 40(3): 1395-1412.
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1 | NADAGOUDA M N, VARMA R S. A greener synthesis of core (Fe, Cu)-shell (Au, Pt, Pd, and Ag) nanocrystals using aqueous vitamin C[J]. Crystal Growth & Design, 2007, 7(12): 2582-2587. |
2 | ZHANG J, ZHAO Y, HAN S, et al. Self-assembly of surfactant-like peptides and their applications[J]. Science China: Chemistry, 2014, 57(12): 1634-1645. |
3 | SUPOTHINA S, RATTANAKAM R, TAWKAEW S. Hydrothermal synthesis and photocatalytic activity of anatase TiO2 nanofiber[J]. Journal of Nanoscience and Nanotechnology, 2012, 12(6): 4998-5003. |
4 | LI N C, MARTIN C R. A high-rate, high-capacity, nanostructured Sn-based anode prepared using sol-gel template synthesis[J]. Journal of the Electrochemical Society, 2001, 148(2): A164-A170. |
5 | FAN Z J, YAN J, WEI T, et al. Nanographeneconstructed carbon nanofibers grown on graphene sheets by chemical vapor deposition: high-performance anode materials for lithium ion batteries[J]. ACS Nano, 2011, 5(4): 2787-2794. |
6 | INAGAKI M, YANG Y, KANG F. Carbon nanofibers prepared via electrospinning[J]. Advanced Materials, 2012, 24(19): 2547-2566. |
7 | KALLURI S, SENG K H, GUO Z, et al. Electrospun lithium metal oxide cathode materials for lithium-ion batteries[J]. RSC Advances, 2013, 3(48): 25576-25601. |
8 | TAYLOR G. Electrically driven jets[J]. Proceedings of the Royal Society of London, A: Mathematical and Physical Sciences, 1969, 313(1515): 453-475. |
9 | SILL T J, RECUM H A VON. Electro spinning: applications in drug delivery and tissue engineering[J]. Biomaterials, 2008,29(13): 1989-2006. |
10 | 漆东岳, 刘延波. 规模化取向静电纺丝技术的现状与展望[J]. 天津工业大学学报, 2012, 31(4): 22-27. |
QI Dongyue, LIU Yanbo. Status and outlook for large-scale oriented electrospinning technology[J]. Journal of Tianjin Polytechnic University, 2012, 31(4): 22-27. | |
11 | RENEKER D H, YARIN A L, FONG H, et al. Bending in stability of electrically charged liquid jets of polymer solutions in electrospinning[J]. Journal of Applied Physics, 2000, 87(9): 4531-4547. |
12 | 王中伟. 电纺纳米碳纤维及其电催化性能的研究[D]. 徐州: 江苏师范大学, 2017. |
WANG Zhongwei. Studies on electrospun carbon nanofibers and its electrocatalytic porperties[D]. Xuzhou: Jiangsu Normal University, 2017. | |
13 | LARRONDO L, JOHN MANLEY R ST. Electrostatic fiber spinning from polymer melts. I. Experimental observations on fiber formation and properties[J]. Journal of Polymer Science: Polymer Physics Edition, 1981, 19(6): 909-920. |
14 | HAGHI A K, AKBARI M. Trends in electrospinning of natural nanofibers[J]. Physica Status Solidi A, 2007, 204(6): 1830-1834. |
15 | KI C S, BAEK D H, GANG K D, et al. Characterization of gelatin nanofiber prepared from gelatin-formic acid solution[J]. Polymer, 2005, 46(14): 5094-5102. |
16 | ZHANG C X, YUAN X Y, WU L L, et al. Study on morphology of electrospun poly(vinyl alcohol) mats[J]. European Polymer Journal, 2005, 41(3): 423-432. |
17 | MIT-UPPATHAM C, NITHITANAKUL M, SUPAPHOL P. Ultratine electrospun polyamide-6 fibers: effect of solution conditions on morphology and average fiber diameter[J]. Macromolecular Chemistry and Physics, 2004, 205(17): 2327-2338. |
18 | CASPER C L, STEPHENS J S, TASSI N G, et al. Controlling surface morphology of electrospun polystyrene fibers: effect of humidity and molecular weight in the electrospinning process[J]. Macromolecules, 2004, 37(2): 573-578. |
19 | 李霖, 张旭, 曲飏, 等. 静电纺丝技术与装置的研究进展[J]. 材料导报, 2019, 33(S1): 89-93. |
LI Lin, ZHANG Xu, QU Yang, et al. Research progress of electrospinning technology and device[J] Materials Reports, 2019, 33(S1): 89-93. | |
20 | KIM G, CHO Y S, KIM W D. Stability analysis for multi jets electrospinning process modified with a cylindrical electrode[J]. European Polymer Journal, 2006, 42(9): 2031-2038. |
21 | THERON S A, YARIN A L, ZUSSMAN E, et al. Multiple jets in electrospinning: experiment and modeling[J]. Polymer, 2005, 46(9): 2889-2899. |
22 | NIU H, LIN T, WANG X. Needleless electrospinning. I. A comparison of cylinder and disk nozzles[J]. Journal of Applied Polymer Science, 2009, 114(6): 3524-3530. |
23 | 陈康, 焦晓宁, 柯鹏. 静电纺丝制备取向纤维的技术进展及应用现状[J]. 合成纤维工业, 2015, 38(6): 62-66. |
CHEN Kang, JIAO Xiaoning, KE Peng. Technological development and application status of oriented fiber by electrospinning[J]. China Synthetic Fiber Industry, 2015, 38(6): 62-66. | |
24 | HE X X, ZHENG J, YU G F, et al. Near-field electrospinning: progress and applications[J]. Journal of Physical Chemistry C, 2017, 121(16): 8663-8678. |
25 | 段嗣斌, 王荣明. 贵金属-过渡金属化合物复合纳米材料的界面调控及原子尺度原位表征[J]. 稀有金属, 2019, 43(11): 1179-1186. |
DUAN Sibin, WANG Rongming. Nanomaterials composed of noble metals and transition metal compounds: interface structure control and in-situ characterization at atomic scale[J]. Chinese Journal of Rare Metals, 2019, 43(11): 1179-1186. | |
26 | LI M, XIONG Y, LIU X, et al. Facile synthesis of electrospun MFe2O4(M=Co, Ni, Cu, Mn) spinel nanofibers with excellent electrocatalytic properties for oxygen evolution and hydrogen peroxide reduction[J]. Nanoscale, 2015, 7(19): 8920-8930. |
27 | YOON K R, LEE G Y, JUNG J W, et al. One-dimensional RuO2/Mn2O3 hollow architectures as efficient bifunctional catalysts for lithium-oxygen batteries[J]. Nano Letters, 2016, 16(3): 2076-2083. |
28 | ZHAN Z, LIANG X, LI J, et al. Interfacial engineering of NiO/NiCo2O4 porous nanofibers as efficient bifunctional catalysts for rechargeable zinc-air batteries[J]. ACS Applied Materials & Interfaces, 2020, 12(19): 21661-21669. |
29 | 张宝山. 金属氧化物纳米纤维的制备、修饰及催化性质研究[D]. 合肥: 安徽理工大学, 2018. |
ZHANG Baoshan. Preparation, modification and catalytic properties of metal oxide nanofibers[D]. Hefei: Anhui University of Science and Technology, 2018. | |
30 | XU X, WANG W, ZHOU W, et al. Recent advances in novel nanostructuring methods of perovskite electrocatalysts for energy-related applications[J]. Small Methods, 2018, 2(7): 1800071. |
31 | WANG Z, TAN S, XIONG Y, et al. Effect of B sites on the catalytic activities for perovskite oxides La0.6Sr0.4CoxFe1-xO3-δ as metal-air batteries catalysts[J]. Progress in Natural Science: Materials International, 2018, 28(4): 399-407. |
32 | ZHU Y, ZHOU W, ZHONG Y, et al. A perovskite nanorod as bifunctional electrocatalyst for overall water splitting[J]. Advanced Energy Materials, 2017, 7(8): 1602122. |
33 | ZHANG W, WANG H, GUAN K, et al. La0.6Sr0.4Co0.2Fe0.8O3-δ/CeO2 heterostructured composite nanofibers as a highly active and robust cathode catalyst for solid oxide fuel cells[J]. ACS Applied Materials & Interfaces, 2019, 11(30): 26830-26841. |
34 | LI A, OOKA H, BONNET N, et al. Stable potential windows for long-term electrocatalysis by manganese oxides under acidic conditions [J]. Angewandte Chemie: International Edition, 2019, 58(15): 5054-5058. |
35 | MONDSCHEIN J S, KUMAR K, HOLDER C F, et al. Intermetallic Ni2Ta electrocatalyst for the oxygen evolution reaction in highly acidic electrolytes[J]. Inorganic Chemistry, 2018, 57(10): 6010-6015. |
36 | GUO D, WANG J, ZHANG L, et al. Strategic atomic layer deposition and electrospinning of cobalt sulfide/nitride composite as efficient bifunctional electrocatalysts for overall water splitting[J]. Small, 2020, 16(35): 2002432. |
37 | CHEN J, WANG J, CHEN J, et al. A bifunctional electrocatalyst of PtNi nanoparticles immobilized on three-dimensional carbon nanofiber mats for efficient and stable water splitting in both acid and basic media[J]. Journal of Materials Science, 2017, 52(22): 13064-13077. |
38 | QIU Y, YU J, SHI T, et al. Nitrogen-doped ultrathin carbon nanofibers derived from electrospinning: large-scale production, unique structure, and application as electrocatalysts for oxygen reduction[J]. Journal of Power Sources, 2011, 196(23): 9862-9867. |
39 | ZHANG Z, LI X, WANG C, et al. Polyacrylonitrile and carbon nanofibers with controllable nanoporous structures by electrospinning[J]. Macromolecular Materials & Engineering, 2010, 294(10): 673-678. |
40 | STRECKOVA M, ORINAKOVA R, MUDRA E, et al. Design of electroactive carbon fibers decorated with metal and metal-phosphide nanoparticles for hydrogen evolution technology[J]. Energy Technology, 2018, 6(7): 1310-1331. |
41 | QIU L, HAN X, LU Q, et al. Co3O4 nanoparticles supported on N-doped electrospinning carbon nanofibers as an efficient and bifunctional oxygen electrocatalyst for rechargeable Zn-air batteries[J]. Inorganic Chemistry Frontiers, 2019, 6(12): 3554-3561. |
42 | LI W, LI M, WANG C, et al. Fe doped CoO/C nanofibers towards efficient oxygen evolution reaction[J]. Applied Surface Science, 2020, 506: 144680. |
43 | LIU K, KATTEL S, MAO V, et al. Electrochemical and computational study of oxygen reduction reaction on nonprecious transition metal/nitrogen doped carbon nanofibers in acid medium[J]. Journal of Physical Chemistry C, 2016, 120(3): 1586-1596. |
44 | LI T, LI S, LIU Q, et al. Immobilization of Ni3Co nanoparticles into N-doped carbon nanotube/nanofiber integrated hierarchically branched architectures toward efficient overall water splitting[J]. Advanced Science, 2020, 7(1): 1902371. |
45 | LI M, WANG H, ZHU W, et al. RuNi nanoparticles embedded in N-doped carbon nanofibers as a robust bifunctional catalyst for efficient overall water splitting[J]. Advanced Science, 2020, 7(2): 1901833. |
46 | WOO S, LEE J, LEE D S, et al. Electrospun carbon nanofibers with embedded Co-ceria nanoparticles for efficient hydrogen evolution and overall water splitting[J]. Materials, 2020, 13(4): 856. |
47 | VERMA S, SINHA-RAY S, SINHA-RAY S. Electrospun CNF supported ceramics as electrochemical catalysts for water splitting and fuel cell: a review[J]. Polymers, 2020, 12(1): 238. |
48 | RAFIQUE J, YU J, ZHA X, et al. Fabrication of ultra thin and aligned carbon nanofibres from electrospun polyacrylonitrile nanofibres[J]. Bulletin of Materials Science, 2010, 33(5): 553-559. |
49 | ZHAO Y, ZHANG J, GUO X, et al. Fe3C@nitrogen doped CNT arrays aligned on nitrogen functionalized carbon nanofibers as highly efficient catalysts for the oxygen evolution reaction[J]. Journal of Materials Chemistry A, 2017, 5(37): 19672-19679. |
50 | MOOSTE M, KIBENA-POLDSEPP E, VASSILJEVA V, et al. Electrocatalysts for oxygen reduction reaction based on electrospun polyacrylonitrile, styrene-acrylonitrile copolymer and carbon nanotube composite fibres[J]. Journal of Materials Science, 2019, 54(17): 11618-11634. |
51 | WEI K, KIM K O, SONG K H, et al. Nitrogen- and oxygen-containing porous ultrafine carbon nanofiber: a highly flexible electrode material for supercapacitor[J]. Journal of Materials Science & Technology, 2017, 33(5): 424-431. |
52 | 兰飞飞. SPE电解水阳极Ir基催化剂的研究[D]. 太原: 中北大学, 2019. |
LAN Feifei. A study on Ir-based catalysts for SPE electrolyzed water anodes[D]. Taiyuan: North University of China, 2019. | |
53 | RASTEN E, HAGEN G, TUNOLD R. Electrocatalysis in water electrolysis with solid polymer electrolyte[J]. Electrochimica Acta, 2003, 48(25/26): 3945-3952. |
54 | ABBOTT D F, LEBEDEV D, WALTAR K, et al. Iridium oxide for the oxygen evolution reaction: correlation between particle size, morphology, and the surface hydroxo layer from operando XAS[J]. Chemistry of Materials, 2016, 28(18): 6591-6604. |
55 | MAYOUSSE E, MAILLARD F, FOUDA-ONANA F, et al. Synthesis and characterization of electrocatalysts for the oxygen evolution in PEM water electrolysis[J]. International Journal of Hydrogen Energy, 2011, 36(17): 10474-10481. |
56 | SONG S, ZHANG H, MA X, et al. Electrochemical investigation of electrocatalysts for the oxygen evolution reaction in PEM water electrolyzers[J]. International Journal of Hydrogen Energy, 2008, 33(19): 4955-4961. |
57 | CRUZ J C, BAGLIO V, SIRACUSANO S, et al. Nanosized IrO2 electrocatalysts for oxygen evolution reaction in an SPE electrolyzer[J]. Journal of Nanoparticle Research, 2011, 13(4): 1639-1646. |
58 | SAPOUNTZI F M, DIVANE S C, PAPAIOANNOU E I, et al. The role of Nafion content in sputtered IrO2 based anodes for low temperature PEM water electrolysis[J]. Journal of Electroanalytical Chemistry, 2011, 662(1): 116-122. |
59 | LEE B S, AHN S H, PARK H Y, et al. Development of electrodeposited IrO2 electrodes as anodes in polymer electrolyte membrane water electrolysis[J]. Applied Catalysis B: Environmental, 2015, 179: 285-291. |
60 | KIM S J, JUNG H, LEE C, et al. Comparative study on hydrogen evolution reaction activity of electrospun nanofibers with diverse metallic Ir and IrO2 composition ratios[J]. ACS Sustainable Chemistry & Engineering, 2019, 7(9): 8613-8620. |
61 | CHO Y B, YU A, LEE C, et al. Fundamental study of facile and stable hydrogen evolution reaction at electrospun Ir and Ru mixed oxide nanofibers[J]. ACS Applied Materials & Interfaces, 2018, 10(1): 541-549. |
62 | FAN L, LI Q, WANG D, et al. Electrospun Ru-RuO2/MoO3 carbon nanorods with multi-active components: a Pt-like catalyst for the hydrogen evolution reaction[J]. Chemical Communications, 2020, 56(5): 739-742. |
63 | MOON S, CHO Y B, YU A, et al. Single-step electrospun Ir/IrO2 nanofibrous structures decorated with Au nanoparticles for highly catalytic oxygen evolution reaction[J]. ACS Applied Materials & Interfaces, 2019, 11(2): 1979-1987. |
64 | YU A, LEE C, KIM M H, et al. Nanotubular iridium-cobalt mixed oxide crystalline architectures inherited from cobalt oxide for highly efficient oxygen evolution reaction catalysis[J]. ACS Applied Materials & Interfaces, 2017, 9(40):35057-35066. |
65 | 朱彩红, 石培峰, 吕张飞, 等. 静电纺丝纳米纤维的制备研究[J]. 无线互联科技, 2018, 15(5): 102-103. |
ZHU Caihong, SHI Peifeng, Zhangfei LYU, et al. Study on the preparation of electrospinning nanofibers[J]. Wireless Internet Technology, 2018, 15(5): 102-103. | |
66 | SULTANOV F, DAULBAYEV C, BAKBOLAT B, et al. Aligned composite SrTiO3/PAN fibers as 1D photocatalyst obtained by electrospinning method[J]. Chemical Physics Letters, 2019, 737: 136821. |
67 | LEE J, YANG H S, LEE N S, et al. Hierarchically assembled 1-dimensional hetero-nanostructures: single crystalline RuO2 nanowires on electrospun IrO2 nanofibres[J]. Crystengcomm, 2013, 15(13): 2367-2371. |
68 | 刘翔. 静电纺丝法制备锑掺杂氧化锡纳米材料的研究[D]. 哈尔滨: 哈尔滨工业大学, 2014. |
LIU Xiang. Study on preparation of antimony doped tin oxide nanomaterials by electrospinning[D]. Harbin: Harbin Institute of Technology, 2014. | |
69 | KIM Y S, KIM W B, JOO Y L. Further improvement of battery performance via charge transfer enhanced by solution-based antimony doping into tin dioxide nanofibers[J]. Journal of Materials Chemistry A, 2014, 2(22): 8323-8327. |
70 | ZHAO N, DENG L, LUO D, et al. Electrospun sntimony tin oxide nanofibers with superior stability as anode material for Li-ion batteries[J]. International Journal of Electrochemical Science, 2018, 13(11): 10612-10625. |
71 | 胡沛然, 王宏志, 李耀刚, 等. 静电纺制备ATO聚集状态可控的柔性导电材料及其性能研究[J]. 硅酸盐通报, 2012, 31(4): 813-817, 821. |
HU Peiran, WANG Hongzhi, LI Yaogang, et al. Synthesis and properties of flexible conductive materials with a controllable state of ATO aggregation via electrospinning[J]. Bulletin of the Chinese Ceramic Society, 2012, 31(4): 813-817, 821. | |
72 | CAVALIERE S, JIMENEZ-MORALES I, ERCOLANO G, et al. Highly stable PEMFC electrodes based on electrospun antimony-doped SnO2[J]. ChemElectroChem, 2015, 2(12): 1966-1973. |
73 | LIU G, BONAKDARPOUR A, WANG X, et al. Antimony-doped tin oxide nanofibers as catalyst support structures for the methanol oxidation reaction in direct methanol fuel cells[J]. Electrocatalysis, 2019, 10(3): 262-271. |
74 | KIM J C, OH S I, KANG W, et al. Superior anodic oxidation in tailored Sb-doped SnO2/Ru-2 composite nanofibers for electrochemical water treatment[J]. Journal of Catalysis, 2019, 374:118-126. |
75 | LIU G, XU J, WANG Y, et al. An oxygen evolution catalyst on an antimony doped tin oxide nanowire structured support for proton exchange membrane liquid water electrolysis[J]. Journal of Materials Chemistry A, 2015, 3(41): 20791-20800. |
76 | REN Y, WANG S, LIU R, et al. A novel route towards well-dispersed short nanofibers and nanoparticles via electrospinning[J]. RSC Advances, 2016, 6(36): 30139-30147. |
77 | MUDRA E, SHEPA I, MILKOVIC O, et al. Effect of iron doping on the properties of SnO2 nano/microfibers[J]. Applied Surface Science, 2019, 480:876-881. |
78 | AN G H, LEE D Y, LEE Y J, et al. Ultrafast lithium storage using antimony-doped tin oxide nanoparticles sandwiched between carbon nanofibers and a carbon skin[J]. ACS Applied Materials & Interfaces, 2016, 8(44): 30264-30270. |
79 | LIU Q, ZHANG L, CHEN J F, et al. Synthesis of TiO2@ATO core-shell nanofibers using coaxial electrospinning[J]. Materials Letters, 2014, 137: 339-342. |
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