[1] 郝亮亮, 窦兵兵, 常 甜, 等. “双碳”背景下能源行业的发展与展望[J]. 能源与节能, 2023(4): 58-60. HAO L L, DOU B B, CHANG T, et al. Development and prospect of energy industry under background of carbon peaking and carbon neutrality[J]. Energy and Energy Conservation, 2023(4): 58-60 (in Chinese). [2] LIU D, XIE Y, ZHONG J,et al. High methanol resistance semi-crystalline sulfonated poly(ether ketone) proton exchange membrane for direct methanol fuel cell[J]. Journal of Membrane Science, 2022, 650: 120413. [3] HUANG X Y, WANG J L, WANG L L. Esterification modification and characterization of polyvinyl alcohol anion exchange membrane for direct methanol fuel cell[J]. Journal of Polymer Research, 2022, 29(3): 99. [4] XIA B Y, WU H B, WANG X, et al. One-pot synthesis of cubic PtCu3 nanocages with enhanced electrocatalytic activity for the methanol oxidation reaction[J]. Journal of the American Chemical Society, 2012, 134(34): 13934-13937. [5] ZHAO X X, LI Z, WANG S N, et al. Bimetallic synergistic Pd-Pt icosahedra as highly active peroxidase-like mimics for colorimetric analysis[J]. ChemPhysMater, 2023, 2(4): 295-302. [6] GUO S J, ZHANG S, SUN X L, et al. Synthesis of ultrathin FePtPd nanowires and their use as catalysts for methanol oxidation reaction[J]. Journal of the American Chemical Society, 2011, 133(39): 15354-15357. [7] KANG Y J, PYO J B, YE X C, et al. Synthesis, shape control, and methanol electro-oxidation properties of Pt-Zn alloy and Pt3Zn intermetallic nanocrystals[J]. ACS Nano, 2012, 6(6): 5642-5647. [8] ZHENG H T, MODIBEDI M. The thermal kinetics of methanol oxidation on Pt/MWCNT electrocatalysts in alkaline media[J]. Advanced Materials Science and Technology, 2023, 5(1). [9] ZHAO J Y, DUAN Y R, LIAN J E, et al. Insights into the trigger effect of Pt-N bond on lattice distortions of novel PtCu alloys enabling an unusual pathway in oxygen reduction[J]. Separation and Purification Technology, 2023, 320: 124092. [10] YU X, KUAI L, GENG B Y. CeO2/rGO/Pt sandwich nanostructure: rGo-enhanced electron transmission between metal oxide and metal nanoparticles for anodic methanol oxidation of direct methanolfuel cells[J]. Nanoscale, 2012, 4(18): 5738-5743. [11] 毛慧杰. 直接甲醇燃料电池阳极催化剂的制备及电催化性能研究[D]. 太原: 中北大学, 2021. MAO H J. Preparation and electrocatalytic performance of anode catalysts for direct methanol fuel cells [D]. Taiyuan: North Central University, 2021 (in Chinese). [12] 李武超. 锰基催化剂的制备及其催化氧化甲醇性能研究[D]. 桂林: 桂林电子科技大学, 2022. LI W C. Preparation of manganese-based catalyst and its catalytic performance for methanol oxidation[D].Guilin: Guilin University of Electronic Technology, 2022 (in Chinese). [13] DESHPANDE P, PRASAD B L V. Alloying with Mn enhances the activity and durability of the CoPt catalyst toward the methanol oxidation reaction[J]. ACS Applied Materials & Interfaces, 2023, 15(22): 26554-26562. [14] 郭仕权, 孙亚昕, 李从举. 直接甲醇燃料电池(DMFC)阳极过渡金属基催化剂的研究进展[J]. 工程科学学报, 2022, 44(4): 625-640. GUO S Q, SUN Y X, LI C J. Research progress in anode transition metal-based catalysts for direct methanol fuel cell[J]. Chinese Journal of Engineering, 2022, 44(4): 625-640 (in Chinese). [15] 宋衍滟, 尹 雷, 刘禹松, 等. CNFs/Pd催化剂中Pd负载量对电催化氧化甲醇性能的影响[J]. 西安工程大学学报, 2022, 36(6): 24-30. SONG Y Y, YIN L, LIU Y S, et al. Effect of Pd loading in CNFs/Pd catalyst on electrocatalytic oxidation of methanol[J]. Journal of Xi'an Polytechnic University, 2022, 36(6): 24-30 (in Chinese). [16] HU F P, XU J C, WEI L, et al. In situ Raman study of high potential scan enhanced Pt/C and Pd/C catalyst performance for ethanol oxidation[J]. Electrochemistry Communications, 2023, 154: 107561. [17] 王 鹏, 李 涛, 张海涛, 等. 基于钯炭催化剂的苯酚加氢反应及其本征动力学[J]. 华东理工大学学报(自然科学版), 2021, 47(3): 255-261. WANG P, LI T, ZHANG H T, et al. Hydrogenation of phenol based on palladium carbon catalyst and its intrinsic kinetics[J]. Journal of East China University of Science and Technology (Natural Science Edition), 2021, 47(3): 255-261 (in Chinese). [18] 陈海波, 李晓敏, 吕 锋. Pd基贵金属催化甲醇合成反应的研究[J]. 能源化工, 2022, 43(5): 6-12. CHEN H B, LI X M, LYU F. Study on Pd-based noble metal catalysts for methanol synthesis[J]. Energy Chemical Industry, 2022, 43(5): 6-12 (in Chinese). [19] 杨海贞, 马 闯, 胡亚雯,等. 静电纺丝聚丙烯腈基纳米纤维在锂电池中的应用[J]. 印染, 2023, 49(10): 87-91. YANG H Z, MA C, HU Y W, et al. Application of polyacrylonitrile-based nanofibers prepared by electrospinning in lithium batteries[J]. China Dyeing & Finishing, 2023, 49(10): 87-91 (in Chinese). [20] 张 曼, 韩继续, 王盈雪, 等. 直接甲醇燃料电池电催化剂研究进展[J]. 浙江化工, 2023, 54(11): 7-13. ZHANG M, HAN J X, WANG Y X, et al. Research progress of electrocatalysts for direct methanol fuel cells. Zhejiang Chemical Industry, 2023, 54(11): 7-13 (in Chinese). [21] 薛亚俊, 顾红星, 徐盼盼, 等. 碳化工艺对HF30F碳纤维力学性能的影响[J]. 合成纤维, 2022, 51(11): 11-14. XUE Y J, GU H X, XU P P, et al. Effect of carbonization process on mechanical properties of HF30F carbon fiber[J]. Synthetic Fiber in China, 2022, 51(11): 11-14 (in Chinese). [22] 许 东, 王 华, 彭卫东,等. PAN基预氧化纤维碳化过程中结构与性能变化[J]. 合成纤维, 2016, 45(11): 16-19. XU D, WANG H, PENG W D, et al. Changes in structure and properties of PAN-based pre-oxidation fiber during carbonization[J]. Synthetic Fiber in China, 2016, 45(11): 16-19 (in Chinese). [23] MEI H, BAI Q L, SUN Y Y, et al. The effect of heat treatment on the strength and toughness of carbon fiber/silicon carbide composites with different pyrolytic carbon interphase thicknesses[J]. Carbon, 2013, 57: 288-297. [24] 何端鹏, 张 磊, 高 鸿,等 碳纤维热导率与其微观结构参数的关系[J]. 宇航材料工艺, 2023, 53(2): 105-110. HE D P, ZHANG L, GAO H, et al. Relationship between thermal conductivities and its microstructural parameters of carbon fibers[J]. Aerospace Materials & Technology, 2023, 53(2): 105-110 (in Chinese). [25] 宋衍滟, 王晨星, 杨鹏飞,等. NiO改性纳米多孔Ag电催化氧化硼氢化钠性能研究[J]. 西安工程大学学报, 2023, 37(3): 44-50. SONG Y Y, WANG C X, YANG P F, et al. Study on the performance of NiO modified nano-porous Ag electrocatalytic oxidation of sodium borohydride[J]. Journal of Xi'an Polytechnic University, 2023, 37(3): 44-50 (in Chinese). [26] ALTAF F, AHMED S, DASTAN D, et al. Novel sepiolite reinforced emerging composite polymer electrolyte membranes for high-performance direct methanol fuel cells[J]. Materials Today Chemistry, 2022, 24: 100843. [27] MA Y, REN K X, ZENG Z Q, et al. Highly selective sulfonated Poly (arylene ether nitrile) composite membranes containing copper phthalocyanine grafted graphene oxide for direct methanol fuel cell[J]. High Performance Polymers, 2022, 34(3): 253-263. [28] YISILAMU Z, MAIMAITIYIMING X, LIU A J. Silk-derived N-doped Fe@NPC as efficient bifunctional electrocatalyst for direct methanol fuel cell (DMFC)[J]. ChemistrySelect, 2022, 7(10): e202104427. [29] DELIGÖZ H,YıLMAZTÜRK S,GÜMÜŞOĞLU T.Improved direct methanol fuel cell performance of layer-by-layer assembled composite and catalyst containing membranes[J].Electrochimica Acta, 2013: 111791-796. [30] 宋衍滟, 陈 盈, 赵钰淳, 等. Ni含量对纳米多孔PdAg催化剂电催化氧化甲醇性能的影响[J]. 纺织高校基础科学学报, 2022, 35(3): 101-107. SONG Y Y, CHEN Y, ZHAO Y C, et al. Effect of Ni content on electrocatalytic oxidation of methanol by nanoporous PdAg catalyst. Journal of Basic Science of Textile Universities, 2022, 35(3): 101-107 (in Chinese). [31] YUDA A, KUMAR A. A review of g-C3N4 based catalysts for direct methanol fuel cells[J]. International Journal of Hydrogen Energy, 2022, 47(5): 3371-3395. [32] TANG J L, ZHU X J. Modeling the output power of direct methanol fuel cells using SVR[J]. Applied Mechanics and Materials, 2022, 904: 1-5. [33] MARTINAIOU I, MONTEVERDE VIDELA A H A, WEIDLER N, et al. Activity and degradation study of an Fe-N-C catalyst for ORR in Direct Methanol Fuel Cell (DMFC)[J]. Applied Catalysis B: Environmental, 2020, 262: 118217. [34] NOOR T, PERVAIZ S, IQBAL N, et al. Nanocomposites of NiO/CuO based MOF with rGO: an efficient and robust electrocatalyst for methanol oxidation reaction in DMFC[J]. Nanomaterials, 2020, 10(8): 1601. |