Journal of Automotive Safety and Energy ›› 2024, Vol. 15 ›› Issue (3): 379-386.DOI: 10.3969/j.issn.1674-8484.2024.03.011
• Automotive Energy Efficiency and Environment Protection • Previous Articles Next Articles
SUN Jingyi1(
), HAN Dingbo1, GE Jing1, GUO Han1, ZHANG Jianbo2, LIU Yong1,*(
)
Received:2023-11-09
Revised:2023-12-21
Online:2024-06-30
Published:2024-07-01
CLC Number:
SUN Jingyi, HAN Dingbo, GE Jing, GUO Han, ZHANG Jianbo, LIU Yong. Preparation and performance of the PAN/UiO-66-NH2/Nafion composite nanofiber proton exchange membrane[J]. Journal of Automotive Safety and Energy, 2024, 15(3): 379-386.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.journalase.com/EN/10.3969/j.issn.1674-8484.2024.03.011
| [1] | Majlan E H, Rohendi D, Daud W R W, et al. Electrode for proton exchange membrane fuel cells: A review[J]. Renew Sust Energ Rev, 2018, 89(6): 117-134. |
| [2] | WANG Hang, ZHANG Jinghan, NING Xin, et al. Recent advances in designing and tailoring nanofiber composite electrolyte membranes for high-performance proton exchange membrane fuel cells[J]. Int’l J Hydro Energ, 2021, 46(49): 25225-25251. |
| [3] | PENG Shengjie, LI Linin, LEE J, et al. Electrospun carbon nanofibers and their hybrid composites as advanced materials for energy conversion and storage[J]. Nano Energy, 2016, 22: 361-395. |
| [4] | Nam I, Kim N, Kim G, et al. One step preparation of Mn3O4 / graphene composites for use as an anode in Li ion batteries[J]. J Power Sources, 2013, 244: 56-62. |
| [5] | LI Xiangye, ZHOU Ruifeng, WANG Zhenzhen, et al. Electrospun metal-organic framework based nanofibers for energy storage and environmental applications: Current approaches and challenges[J]. J Mater Chem A Mater, 2022, 10(4): 1642-1681. |
| [6] | LIANG Xiaoqiang, ZHANG Feng, FENG Wei, et al. From metal-organic framework (MOF) to MOF-polymer composite membrane: enhancement of low-humidity proton conductivity[J]. Chem Sci, 2013, 4(3): 983-992. |
| [7] | LIU Yaru, CHEN Yiyang, ZHUANG Qi, et al. Recent advances in MOFs-based proton exchange membranes[J]. Coord Chem Rev, 2022, 471(15): 214740. |
| [8] | Troyano J, Carné-Sánchez A, Pérez-Carvajal J, et al. A self-folding polymer film based on swelling metal-organic frameworks[J]. Angew Chem Int’l Edit, 2018, 57(47): 15420-15424. |
| [9] | FENG Lu, HOU Haobo, ZHONG Hong. UiO-66 derivatives and their composite membranes for effective proton conduction[J]. Dalton T, 2020, 49(47): 17130-17139. |
| [10] | YANG Fan, HUANG Hongliang, WANG Xiayan, et al. Proton Conductivities in Functionalized UiO-66: Tuned Properties, Thermogravimetry Mass, and Molecular Simulation Analyses[J]. Cryst Grow Desi, 2015, 15(12): 5827-5833. |
| [11] | WANG Qinghui, ZHENG Xiaofeng, CHEN Huixuan, et al. Synergistic effect of MOF-Directed acid-base pairs for enhanced proton conduction[J]. Micro Meso Mate, 2021, 323: 111199. |
| [12] | WANG Liyuan, DENG Nanping, LIANG Yueyao, et al. Metal-organic framework anchored sulfonated poly(ether sulfone) nanofibers as highly conductive channels for hybrid proton exchange membranes[J]. J Power Sources, 2020, 450: No 227592. |
| [13] | Ariyamparambil V J, Kandasubramanian B. A mini-review on the recent advancement of electrospun MOF-derived nanofibers for energy storage[J]. Chem Engi J, 2022, 11: 100355. |
| [14] | ZHANG Guojun, SONG Xue, LI Jie, et al. Single-side hydrolysis of hollow fiber polyacrylonitrile membrane by an interfacial hydrolysis of a solvent-impregnated membrane[J]. J Memb Sci, 2010, 350(1-2): 211-216. |
| [15] | 李万斌. 新型金属有机骨架/聚合物中空纤维复合膜的制备及其分离性能[D]. 杭州: 浙江工业大学, 2016. |
| LI Wanbin. Preparation of novel metal-organic framework/polymer hollow fiber composite membranes and their separation performance[D]. Hangzhou: Zhejiang University of Technology, 2016. (in Chinese) | |
| [16] | Lu X A, Ploskonka A, Tovar T, et al. Direct surface growth of UIO-66-NH2 on polyacrylonitrile nanofibers for efficient toxic chemical removal[J]. Ind Engi Chem Res, 2017, 56(49): 14502-14506. |
| [17] | Aghili F, Ghoreyshi A A, Rahimpour A, et al. New chemistry for mixed matrix membranes: growth of continuous multilayer UiO-66-NH2 on UiO-66-NH2-based polyacrylonitrile for highly efficient separations[J]. Ind Engi Chem Res, 2020, 59(16): 7825-7838. |
| [18] | 李成运. 表面改性聚丙烯腈纤维与磺化聚醚醚酮复合质子交换膜的制备与研究[D]. 北京: 中国石油大学, 2020. |
| LI Chengyun. Preparation and study of surface modified polyacrylonitrile fiber and sulfonated poly (ether ether ketone) composite proton exchange membrane[D]. Beijing: China University of Petroleum, 2020. (in Chinese) | |
| [19] | CHEN Peng, YUAN Xinhai, XIA Yingbin, et al. An artificial polyacrylonitrile coating layer confining zinc dendrite growth for highly reversible aqueous zinc-based batteries[J]. Advan Sci, 2021, 8(11): 2100309. |
| [20] | YANG Hu, YUAN Bo, LU Yaobo, et al. Preparation of magnetic chitosan microspheres and its applications in wastewater treatment[J]. Sci Chin B Chem, 2009, 52: 249-256. |
| [21] | Zango Z, Ramli A, Jumbri K, et al. Optimization studies and artificial neural network modeling for pyrene adsorption onto UiO-66(Zr) and NH2-UiO-66(Zr) metal organic frameworks[J]. Polyhedron, 2020, 192: 114857. |
| [22] | ZHAO Guodong, SHI Lei, ZHANG Meiling, et al. Self-assembly of metal organic framework onto nanofibrous mats to enhance proton conductivity for proton exchange membrane[J]. Int’l J Hydro Energ, 2021, 46(73): 36415-36423. |
| [1] | ZHU Xinning, WANG Xi, LIU Rongkang, ZHU Siming, ZHANG Jianbo, ZHOU Wei. Structural design and mass-transfer performances of a proton exchange membrane fuel cell with a traveling-wave flow-field [J]. Journal of Automotive Safety and Energy, 2024, 15(3): 351-359. |
| [2] | GUAN Quan, TU Zhengkai. Optimal design of energy management system for hybrid sightseeing-bus with fuel-cells and lithium-batteries [J]. Journal of Automotive Safety and Energy, 2024, 15(2): 199-207. |
| [3] | SONG Zehua, CHEN Hao, GUO Hang, YE Fang, ZHANG Weibo. Dynamic simulation of heating system in fuel cell vehicles based on thermal storage device assistance [J]. Journal of Automotive Safety and Energy, 2024, 15(1): 54-62. |
| [4] | LUO Chuang, XU Liang. Fuzzy energy management strategies based on the ISSA for multiple power sources in fuel cells [J]. Journal of Automotive Safety and Energy, 2023, 14(4): 496-504. |
| [5] | CHEN Zhili. Review on the research and development trends and prospects for argon closed cycle hydrogen engines [J]. Journal of Automotive Safety and Energy, 2023, 14(1): 1-16. |
| [6] | LIU Yongfeng, ZHANG Lu, PEI Pucheng, LIU Xintong, YU Yongshuai. Analysis of the influences on dynamic response of relative humidity to PEMFC during loading [J]. Journal of Automotive Safety and Energy, 2023, 14(1): 89-97. |
| [7] | SHI Qitong, FENG Cong, LI Bing, ZHANG Cunman, MING Pingwen. Deformation modulus and optimal design of ridge/groove bending radius for the gas diffusion layer [J]. Journal of Automotive Safety and Energy, 2023, 14(1): 98-105. |
| [8] | WANG Han, SONG Panpan, WEI Mingshan, LU Zhenbo, LI Jianwei, ZHUGE Weilin, ZHANG Yangjun. Design and performance analysis of the array scroll hydrogen recirculation pump [J]. Journal of Automotive Safety and Energy, 2022, 13(4): 760-769. |
| [9] | YIN Yanli, ZHANG Xinxin, PAN Xiaoliang, ZHAN Shen, HUANG Xuejiang, WANG Fuzhen. Equivalent factor of energy management strategy for fuel cell hybrid electric vehicles based on Q-Learning [J]. Journal of Automotive Safety and Energy, 2022, 13(4): 785-795. |
| [10] | SONG Bo, SUN Kai, CHE Zhizhao, CHEN Rui, LIU Huaiyu, REN Meilin, WANG Tianyou. Influence of the energy management strategy on the thermal management system performance of fuel cell bus [J]. Journal of Automotive Safety and Energy, 2022, 13(3): 526-534. |
| [11] | WANG Hewu, OUYANG Minggao, LI Jianqiu, YANG Fuyuan. Hydrogen fuel cell vehicle technology roadmap and progress in China [J]. Journal of Automotive Safety and Energy, 2022, 13(2): 211-224. |
| [12] | LU Dagang, YI Fengyan, HU Donghai, CHENG Shan. Coordinated control of FCV braking energy recovery considering dynamic load shedding characteristics of PEMFC [J]. Journal of Automotive Safety and Energy, 2022, 13(2): 350-357. |
| [13] | ZHANG Junliang, CHENG Ming, LUO Xiashuang, LI Huiyuan, LUO Liuxuan, CHENG Xiaojing, YAN Xiaohui, SHEN Shuiyun. Current status of the research on key technologies of vehicle fuel cell stack [J]. Journal of Automotive Safety and Energy, 2022, 13(1): 1-28. |
| [14] | JIN Sihan, PENG Yiqiang, WU Xiaohua, HAN Zhen. Construction of the driving cycle for fuel cell bus running in Chengdu demonstration area [J]. Journal of Automotive Safety and Energy, 2022, 13(1): 202-208. |
| [15] | LI Qingshan, WANG Chunmei, WANG Chenfang, SHI Lining, ZHUGE Weilin, ZHANG Yangjun. Influence of the condensation conditions on PEMFC with ORC condenser using zeotropic fluids [J]. Journal of Automotive Safety and Energy, 2021, 12(4): 551-556. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||