电化学(中英文) ›› 2026, Vol. 32 ›› Issue (9): 2604091. doi: 10.61558/2993-074X.3620
黄晓a,c, 战梓昊a, 牛浩旭a, 罗官宇b, 黄劲陶b, 靳博暄b, 王得丽b,*(
)(
)
收稿日期:2026-04-08
修回日期:2026-05-25
接受日期:2026-06-11
发布日期:2026-06-11
出版日期:2026-09-28
Xiao Huanga,c, Zihao Zhana, Hao-Xu Niua, Guan-Yu Luob, Jin-Tao Huangb, Bo-Xuan Jinb, De-Li Wangb,*(
)(
)
Received:2026-04-08
Revised:2026-05-25
Accepted:2026-06-11
Online:2026-06-11
Published:2026-09-28
Contact:
*De-Li Wang, Email address: wangdl81125@hust.edu.cn
About author:Author Contributions
Xiao-Huang: Writing-original draft, Investigation, Data curation, Validation, Conceptualization. Zi-Hao Zhan: Investigation, Data curation. Hao-Xu Niu: Investigation, Data curation. Guan-Yu Luo: Investigation, Data curation, Validation. Jin-Tao Huang: Investigation, Data curation, Validation. Bo-Xuan Jin: Investigation, Data curation. De-Li Wang: Supervision, Writing-Conceptualization, Review.
摘要:
双电子氧还原反应(2e- ORR)为过氧化氢的现场制备提供了一条有前景的途径,可作为高能耗蒽醌工艺的绿色替代方案。然而,在目标2e-路径上,竞争性的4e- ORR具有较高选择性,导致过氧化氢的法拉第效率偏低,这成为催化剂设计中的一个关键挑战。本文构建了一种锚定有钴(Co)原子的氮掺杂中空分级多孔碳材料(Co-N/HPC),用于高性能过氧化氢电合成。该Co-N/HPC催化剂展现出优异的2e- ORR性能,在0.4 V(vs. RHE)的施加电位下,过氧化氢选择性接近100%。此外,原位生成的过氧化氢在降解有机污染物方面表现出高效性,展示了该材料在环境修复中的双功能特性。物理表征与模拟计算证实,性能的提升归因于独特的分级结构,该结构促进了电解质的快速扩散并提高了过氧化氢选择性。本研究为设计集高效过氧化氢生产与直接应用为一体的先进电催化剂开辟了新途径。
黄晓, 战梓昊, 牛浩旭, 罗官宇, 黄劲陶, 靳博暄, 王得丽. 氮掺杂分级多孔碳锚定钴原子高效酸性电合成过氧化氢[J]. 电化学(中英文), 2026, 32(9): 2604091.
Xiao Huang, Zihao Zhan, Hao-Xu Niu, Guan-Yu Luo, Jin-Tao Huang, Bo-Xuan Jin, De-Li Wang. Efficient Acidic H2O2 Electrosynthesis over Co Atoms Anchored on Nitrogen-Doped Hierarchical Porous Carbon[J]. Journal of Electrochemistry, 2026, 32(9): 2604091.
| [1] |
Xu J W, Zheng X L, Feng Z P, Lu Z Y, Zhang Z W, Huang W, Li Y Q, Vuckovic D, Li Y, Dai S, Chen G X, Wang K C, Wang H S, Chen J K, Mitch W, Cui Y. Organic wastewater treatment by a single-atom catalyst and electrolytically produced H2O2[J]. Nat. Sustain., 2021, 4: 233-241. https://doi.org/10.1038/s41893-020-00635-w.
doi: 10.1038/s41893-020-00635-w URL |
| [2] |
Tian Y H, Deng D J, Xu L, Li M, Chen H, Wu Z Z, Zhang S Q. Strategies for sustainable production of hydrogen peroxide via oxygen reduction reaction: from catalyst design to device setup[J]. Nano-Micro Lett., 2023, 15: 122. https://doi.10.1007/s40820-023-01067-9.
doi: 10.1007/s40820-023-01067-9 URL pmid: 37160560 |
| [3] |
Lin S J, Wang J, Chen J X, Lin P, Wang H B, Huang J H, Wen Z H. Electrochemical pilot H2O2 production by solid-state electrolyte reactor: insights from a hybrid catalyst for 2-electron oxygen reduction reaction[J]. Angew. Chem., Int. Ed., 2025, 64(19): e202502144. https://doi.org/10.1002/anie.202502144.
doi: 10.1002/anie.v64.19 URL |
| [4] | Nishimi T, Kamachi T, Kato K, Kato T, Yoshizawa K. Mechanistic study on the production of hydrogen peroxide in the anthraquinone process[J]. Eur. J. Org. Chem., 2011, 2011(22): 4113-4120. https://doi.org/10.1002/ejoc.201100300. |
| [5] |
Duan L Y, Wu Y F, Zhao J N, Yu Z Y, Li S C, Li J N, Sun H N, Lu Y, Ma C F, Liu Q L, Meng Q W. Facilitating charge spatial separation for efficient photocatalytic H2O2 production via ester-oxygen bridged organic anthraquinone and curved open-ring g-C3N4 structures[J]. Adv. Funct. Mater., 2025, 35(19): 2416483. https://doi.org/10.1002/adfm.202416483.
doi: 10.1002/adfm.v35.24 URL |
| [6] |
Cheng Y X, Wang L, Lü S X, Wang Y Q, Mi Z T. Gas-liquid-liquid three-phase reactive extraction for the hydrogen peroxide preparation by anthraquinone process[J]. Ind. Eng. Chem. Res., 2008, 47(14): 7414-7418. https://doi.org/10.1021/ie800500y.
doi: 10.1021/ie800500y URL |
| [7] |
Perry S C, Pangotra D, Vieira L, Csepei L, Sieber V, Wang L, León C, Walsh F C. Electrochemical synthesis of hydrogen peroxide from water and oxygen[J]. Nat. Rev. Chem., 2019, 3(7): 442-458. https://doi.org/10.1038/s41570-019-0110-6.
doi: 10.1038/s41570-019-0110-6 URL |
| [8] |
Tan M X, Yao Z Y, Ma L S, Cao F H, Peng Y F, Chen J, Bai Y. Design of the photocatalyst for H2O2 production by oxygen reduction reaction[J]. Coord. Chem. Rev., 2025, 544: 216993. https://doi.org/10.1016/j.ccr.2025.216993.
doi: 10.1016/j.ccr.2025.216993 URL |
| [9] |
Chinese Society of Electrochemistry (CSE). The top ten scientific questions in electrochemistry[J]. J. Electrochem., 2024, 30(1): 2024121. https://doi.org/10.61558/2993-074X.3444.
doi: 10.61558/2993-074X.3444 URL |
| [10] |
Cheng S, Zheng H, Shen C, Jiang B C, Liu F Q, Li A M. Hierarchical iron phosphides composite confined in ultrathin carbon layer as effective heterogeneous electro-fenton catalyst with prominent stability and catalytic activity[J]. Adv. Funct. Mater., 2021, 31(48): 2106311. https://doi.org/10.1002/adfm.202106311.
doi: 10.1002/adfm.v31.48 URL |
| [11] |
Jiang K, Back S, Akey A J, Xia C, Hu Y F, Liang W T, Schaak D, Stavitski E, Nørskov J K, Siahrostami S, Wang H T. Highly selective oxygen reduction to hydrogen peroxide on transition metal single atom coordination[J]. Nat. Commun., 2019, 10(1): 3997. https://doi.org/10.1038/s41467-019-11992-2.
doi: 10.1038/s41467-019-11992-2 URL pmid: 31488826 |
| [12] |
Sheng H Y, Janes A N, Dominic Ross R, Kaiman D, Huang J Z, Song B, Schmidt J R, Jin S. Stable and selective electrosynthesis of hydrogen peroxide and the electro-Fenton process on CoSe2 polymorph catalysts[J]. Energy Environ. Sci., 2020, 13: 4189-4203. https://doi.org/10.1039/d0ee01925a.
doi: 10.1039/D0EE01925A URL |
| [13] |
Gao J J, Yang H B, Huang X, Hung S, Cai W Z, Jia C M, Miao S, Chen H M, Yang X F, Huang Y Q, Zhang T, Liu B. Enabling direct H2O2 production in acidic media through rational design of transition metal single atom catalyst[J]. Chem, 2020, 6(3): 658-674. https://doi.org/10.1016/j.chempr.2019.12.008.
doi: 10.1016/j.chempr.2019.12.008 URL |
| [14] |
Liang Z Z, Lei H T, Zheng H Q, Wang H Y, Zhang W, Cao R. Selective two-electron and four-electron oxygen reduction reactions using Co-based electrocatalysts[J]. Chem. Soc. Rev., 2025, 54: 5248-5291, https://doi.org/10.1039/D4CS01199F.
doi: 10.1039/D4CS01199F URL |
| [15] |
Zhao X H, Liu Y Y. Origin of selective production of hydrogen peroxide by electrochemical oxygen reduction[J]. J. Am. Chem. Soc., 2021, 143(25): 9423-9428. https://doi.org/10.1021/jacs.1c02186.
doi: 10.1021/jacs.1c02186 URL |
| [16] |
Siahrostami S, Casadevall A V, Karamad M, Deiana D, Malacrida P, Wickman B, Escribano M E, Paoli E A, Frydendal R, Hansen T W, Chorkendorff I, Stephens I E L, Rossmeisl J. Enabling direct H2O2 production through rational electrocatalyst design[J]. Nat. Mater., 2013, 12(12): 1137-1143. https://doi.org/10.1038/nmat3795.
doi: 10.1038/nmat3795 URL pmid: 24240242 |
| [17] |
Sun T, Ma X Y, Zhang Z Q, Li M X, Li J. Advancing catalyst design for H2O2 electrosynthesis via oxygen reduction reaction[J]. Coord. Chem. Rev., 2025, 545: 217008. https://doi.org/10.1016/j.ccr.2025.217008.
doi: 10.1016/j.ccr.2025.217008 URL |
| [18] |
Jordá-Faus P, Rizo R, Herrero E, Arán-Ais R M. Investigating alloy-induced modifications in the oxygen reduction reaction mechanism on PtPd single crystals[J]. ACS Catal., 2024, 14(17): 12833-12845. https://doi.org/10.1021/acscatal.4c03565.
doi: 10.1021/acscatal.4c03565 URL |
| [19] |
Zhao C X, Li B Q, Liu J N, Zhang Q. Intrinsic electrocatalytic activity regulation of M-N-C single-atom catalysts for the oxygen reduction reaction[J]. Angew Chem. Int. Ed., 2021, 60(9): 4448-4463. https://doi.org/10.1002/anie.202003917.
doi: 10.1002/anie.v60.9 URL |
| [20] |
Kim J, Yoo J M, Lee H S, Sung Y E, Hyeon T. Single-atom M-N-C catalysts for oxygen reduction electrocatalysis[J]. Trends Chem., 2021, 3(9): 779-794. https://doi.org/10.1016/j.trechm.2021.05.009.
doi: 10.1016/j.trechm.2021.05.009 URL |
| [21] |
Lin L, Hou X X, Fan Z C, Yin Y X, Zhao W Y, Wei K, Zhou Y D, Hou L N, Wang Y, Wan H, Ge J J. Axial sulfur-coordination engineering boosting Fe-N-C catalysts for high-performance proton exchange membrane fuel cells[J]. J. Electrochem., 2026, 32(3): 2509281. https://doi.org/10.61558/2993-074X.3592.
doi: 10.61558/2993-074X.3592 URL |
| [22] |
Liu L X, Kang L Q, Feng J R, Hopkinson D G, Allen C S, Tan Y S, Gu H, Mikulska I, Celorrio V, Gianolio D, Wang T L, Zhang L Q, Li K Q, Zhang J C, Zhu J X, Held Georg, Ferrer P, Grinter D, Callison J, Wilding M, Chen S, Parkin I, He G J. Atomically dispersed asymmetric cobalt electrocatalyst for efficient hydrogen peroxide production in neutral media[J]. Nat. Commun., 2024, 15(1): 4079. https://doi.org/10.1038/s41467-024-48209-0.
doi: 10.1038/s41467-024-48209-0 URL pmid: 38744850 |
| [23] |
Li Z M, Wu Q C, Li Y R, Liu C, Yuan P. Coordination engineering of transition metal electrocatalysts for two-electron oxygen reduction reaction[J]. Mater. Today, 2026, 96: 103311. https://doi.org/10.1016/j.mattod.2026.103311.
doi: 10.1016/j.mattod.2026.103311 URL |
| [24] |
Xia H Y, Sun H N, Yang D Y, Zhao J W, Gao G, Wu L, Huang L, Jiang X X. Curvature-engineered steering of oxygen electroreduction pathways on single-atom catalysts[J]. Angew. Chem. Int. Ed., 2026, 65(18): e3924995. https://doi.org/10.1002/anie.3924995.
doi: 10.1002/anie.v65.18 URL |
| [25] |
Chen S Y, Luo T, Wang J Y, Xiang J Q, Li X Q, Ma C, Kao C W, Chan T S, Liu Y N, Liu M. Tuning proton affinity on Co-N-C atomic interface to disentangle activity-selectivity trade-off in acidic oxygen reduction to H2O2[J]. Angew. Chem. Int. Ed., 2025, 64(6): e202418713. https://doi.org/10.1002/anie.202418713.
doi: 10.1002/anie.v64.6 URL |
| [26] |
Hübner J L, Lucchetti L E B, Nong H N, Sharapa D I, Paul B, Kroschel M, Kang J, Teschner D, Behrens S, Studt F, Knop-Gericke A, Siahrostami S, Strasser P. Cation effects on the acidic oxygen reduction reaction at carbon surfaces[J]. ACS Energy Lett., 2024, 9(4): 1331-1338. https://doi.org/10.1021/acsenergylett.3c02743.
doi: 10.1021/acsenergylett.3c02743 URL pmid: 38633991 |
| [27] |
Zhao Y F, Jiang W J, Zhang J Q, Lovell E C, Amal R, Han Z J, Lu X Y. Anchoring sites engineering in single-atom catalysts for highly efficient electrochemical energy conversion reactions[J]. Adv. Mater., 2021, 33(41): 2102801. https://doi.org/10.1002/adma.202102801.
doi: 10.1002/adma.v33.41 URL |
| [28] |
Lin Z, Lohwacharin J, Li Y H, Wang Y. Defect-mediated high loading metal single-atom catalysts direct oxygen reduction reaction selectivity to H2O2 production[J]. J. Colloid Interface Sci., 2026, 702: 138814. https://doi.org/10.1016/j.jcis.2025.138814.
doi: 10.1016/j.jcis.2025.138814 URL |
| [29] |
Tian Y H, Li M, Wu Z Z, Sun Q, Yuan D, Johannessen B, Xu L, Wang Y, Dou Y H, Zhao H J, Zhang S Q. Edge-hosted atomic Co-N4 sites on hierarchical porous carbon for highly selective two-electron oxygen reduction reaction[J]. Angew. Chem. Int. Ed., 2022, 61(51): e202213296. https://doi.org/10.1002/anie.202213296.
doi: 10.1002/anie.v61.51 URL |
| [30] |
Troyano J, Carné-Sánchez A, Avci C, Imaz I, Maspoch D. Colloidal metal-organic framework particles: the pioneering case of ZIF-8[J]. Chem. Soc. Rev., 2019, 48(23): 5534-5546. https://doi.org/10.1039/c9cs00472f.
doi: 10.1039/c9cs00472f URL pmid: 31664283 |
| [31] |
Yang F, Mu H, Wang C Q, Xiang L, Yao K X, Liu L M, Yang Y, Han Y, Li Y S, Pan Y C. Morphological map of ZIF-8 crystals with five distinctive shapes: feature of filler in mixed-matrix membranes on C3H6/C3H8 separation[J]. Chem. Mater., 2018, 30: 3467-3473. https://doi.org/10.1021/acs.chemmater.8b01073.
doi: 10.1021/acs.chemmater.8b01073 URL |
| [32] |
Zhang Z X, Tan B Q, Xie L, Han Z M, Quan H Y, Chen D Z. Electrochemically tailoring oxygen functionalities and pores in ordered mesoporous carbon for enhanced H2O2 production[J]. Appl. Catal. B, 2025, 379: 125703. https://doi.org/10.1016/j.apcatb.2025.125703.
doi: 10.1016/j.apcatb.2025.125703 URL |
| [33] |
Deng Z P, Gong M X, Gong Z, Wang X L. Mesoscale mass transport enhancement on well-defined porous carbon platform for electrochemical H2O2 synthesis[J]. Nano Lett., 2022, 22(23): 9551-9558. https://doi.org/10.1021/acs.nanolett.2c03696.
doi: 10.1021/acs.nanolett.2c03696 URL |
| [34] |
Cui X Q, Zhong L J, Zhao X, Xie J X, He D Q, Yang X, Lin K L, Wang H, Niu L. Ultrafine Co nanoparticles confined in nitrogen-doped carbon toward two-electron oxygen reduction reaction for H2O2 electrosynthesis in acidic media[J]. Chin. Chem. Lett., 2023, 34(11): 108291. https://doi.org/10.1016/j.cclet.2023.108291.
doi: 10.1016/j.cclet.2023.108291 URL |
| [35] |
Liu W, Zhang C, Zhang J J, Huang X, Song M, Li J W, He F, Yang H P, Zhang J, Wang D L. Tuning the atomic configuration of Co-N-C electrocatalyst enables highly-selective H2O2 production in acidic media[J]. Appl. Catal. B, 2022, 310: 121312. https://doi.org/10.1016/j.apcatb.2022.121312.
doi: 10.1016/j.apcatb.2022.121312 URL |
| [36] |
Zhang J J, Liu W, He F, Song M, Huang X, Shen T, Li J W, Zhang C, Zhang J, Wang D L. Highly dispersed Co atoms anchored in porous nitrogen-doped carbon for acidic H2O2 electrosynthesis[J]. Chem. Eng. J., 2022, 438: 135619. https://doi.org/10.1016/j.cej.2022.135619.
doi: 10.1016/j.cej.2022.135619 URL |
| [37] |
Zhang C, Zhang J, Zhang J J, Song M, Huang X, Liu W, Xiong M, Chen Y Q, Xia S W, Yang H P, Wang D L. Tuning coal into graphene-like nanocarbon for electrochemical H2O2 production with nearly 100% faraday efficiency[J]. ACS Sustainable Chem. Eng., 2021, 9(28): 9369-9375. https://doi.org/10.1021/acssuschemeng.1c02357.
doi: 10.1021/acssuschemeng.1c02357 URL |
| [38] |
Wang Y, Zhang T T, Li D Y, Li P H, Hu Q L, Zhuang Q, Duan L M, Liu J H. Electronic regulation of carbon sites by oxygenated groups for electrochemical oxygen reduction to H2O2[J]. J. Mater. Chem. A, 2024, 12(35): 23398-23405. https://doi.org/10.1039/D4TA02266A.
doi: 10.1039/D4TA02266A URL |
| [39] |
Iglesias D, Giuliani A, Melchionna M, Marchesan S, Criado A, Nasi L, Bevilacqua M, Tavagnacco C, Vizza F, Prato M, Fornasiero P. N-doped graphitized carbon nanohorns as a forefront electrocatalyst in highly selective O2 reduction to H2O2[J]. Chem, 2018, 4(1): 106-123. https://doi.org/10.1016/j.chempr.2017.10.013.
doi: 10.1016/j.chempr.2017.10.013 URL |
| [40] | Yuan H F, Zhang Y, Zhai X W, Hu L B, Ge G X, Wang G, Yu F, Dai B. Copper nanoparticles in-situ anchored on nitrogen-doped carbon for high-efficiency oxygen reduction reaction electrocatalyst[J]. J. Electrochem., 2021, 27(6): 671-680. https://doi.org/10.13208/j.electrochem.200724. |
| [41] |
Gong H S, Wei Z X, Gong Z C, Liu J J, Ye G L, Yan M M, Dong J C, Allen C, Liu J B, Huang K, Liu R, He G C, Zhao S L, Fei H. L. Low-coordinated Co-N-C on oxygenated graphene for efficient electrocatalytic H2O2 production[J]. Adv. Funct. Mater., 2021, 32(5): 2106886. https://doi.org/10.1002/adfm.202106886.
doi: 10.1002/adfm.v32.5 URL |
| [42] |
Wang R Y, Zhong J P, Li D X, Meng J Z, Huang W M, Ma X, Guo W, Tian F H, Li C. H. Engineering d-band center of cobalt active sites via dual coordination with nitrogen-doped carbon nanotube and Ti3C2Tx MXene toward electrocatalytic oxygen reduction for H2O2 production[J]. Chem. Eng. J., 2024, 488: 150894. https://doi.org/10.1016/j.cej.2024.150894.
doi: 10.1016/j.cej.2024.150894 URL |
| [43] |
Tang C, Jiao Y, Shi B Y, Liu J N, Xie Z H, Chen X, Zhang Q, Qiao S. Z. Coordination tunes selectivity: two-electron oxygen reduction on high-loading molybdenum single-atom catalysts[J]. Angew. Chem. Int. Ed., 2020, 59(23): 9171-9176. https://doi.org/10.1002/anie.202003842.
doi: 10.1002/anie.202003842 URL pmid: 32196867 |
| [44] | Li Y, Chen J X, Ji Y X, Zhao Z L, Cui W J, Sang X H, Cheng Y, Yang B, Li Z J, Zhang Q H, Lei L C, Wen Z H, Dai L M Hou. Y. Single-atom iron catalyst with biomimetic active center to accelerate proton spillover for medical-level electrosynthesis of H2O2 disinfectant[J]. Angew. Chem. Int. Ed., 2023, 62(34): 202306491. https://doi.org/10.1002/anie.202306491. |
| [45] |
Lin Z H, Zhang Q R, Pan J, Tsounis C, Esmailpour A A, Xi S B, Yang H Y, Han Z J, Yun J, Amal R, Lu X Y. Atomic Co decorated free-standing graphene electrode assembly for efficient hydrogen peroxide production in acid[J]. Energy Environ. Sci., 2022, 15(3): 1172-1182. https://doi.org/10.1039/d1ee02884g.
doi: 10.1039/D1EE02884G URL |
| [46] |
Tang C, Chen L, Li H J, Li L Q, Jiao Y, Zheng Y, Xu H L, Davey K, Qiao S Z. Tailoring acidic oxygen reduction selectivity on single-atom catalysts via modification of first and second coordination spheres[J]. J. Am. Chem. Soc., 2021, 143(20): 7819-7827. https://doi.org/10.1021/jacs.1c03135.
doi: 10.1021/jacs.1c03135 URL pmid: 33983725 |
| [47] |
Brea C, Hu G X. Dual-atom catalysts for the oxygen reduction reaction: unraveling atomic structures under reaction conditions[J]. J. Am. Chem. Soc., 2025, 147(22): 19210-19216. https://doi.org/10.1021/jacs.5c04776.
doi: 10.1021/jacs.5c04776 URL |
| [48] |
Du J, Liu Y C, Sun M, Guan J, Chen A B, Han B X. Highly selective oxygen electroreduction to hydrogen peroxide on sulfur-doped mesoporous carbon[J]. Angew. Chem. Int. Ed., 2025, 64(24): e202503385. https://doi.org/10.1002/anie.202503385.
doi: 10.1002/anie.v64.24 URL |
| [1] | 李红梅, 易梅, 晋兆宇, 解明皓, 郭勇, 李盼盼. 电催化硝酸盐还原合成氨过程中活性氢的原位电化学表征技术[J]. 电化学(中英文), 2026, 32(8): 2517003-. |
| [2] | 哈梅萨·哈梅萨, 伊斯娜伊妮·拉赫玛瓦蒂, 安德烈亚·菲奥拉尼, 永永康昭, 恩妮·库斯里尼, 阿安·约翰·瓦尤迪, 阿塞普·赛富米拉, 特里比达萨里·A·伊万迪尼. 基于电化学发光的砷(III)传感器:采用丝网印刷金电极上的鲁米诺[J]. 电化学(中英文), 2026, 32(2): 2507092-. |
| [3] | 李子萌, 李章健, 方萍, 梅天胜. 电化学促进的镍催化的α-氰基乙酸酯的α-芳基化反应[J]. 电化学(中英文), 2024, 30(5): 2313004-. |
| [4] | 揭亮华, 徐海超. 电催化活性亚甲基化合物的环丙烷化反应[J]. 电化学(中英文), 2024, 30(4): 2313001-. |
| [5] | 蓝丽媛, 蒋洋叶, R. Daniel Little, 曾程初. 以芳基重氮盐为芳基前体电化学合成芳基取代的苯并噻吩和菲[J]. 电化学(中英文), 2024, 30(4): 2313002-. |
| [6] | 汪佳裕, 仝学锋, 彭启繁, 关越鹏, 王维坤, 王安邦, 刘乃强, 黄雅钦. 用纳米羟基磷灰石@多孔碳构建锂硫电池高效反应界面[J]. 电化学(中英文), 2022, 28(11): 2219008-. |
| [7] | 魏家祺, 陈晓东, 李述周. 电化学合成纳米材料和小分子材料在电解制氢领域的应用[J]. 电化学(中英文), 2022, 28(10): 2214012-. |
| [8] | 张伟艺, 马宪印, 邹受忠, 蔡文斌. 铂和钯上丙三醇电氧化研究进展:从反应机理到催化材料[J]. 电化学(中英文), 2021, 27(3): 233-256. |
| [9] | 陈嘉卉, 钟晓斌, 何超, 王晓晓, 许清池, 李剑锋. 中空核壳结构Ni1.2Co0.8P@N-C钠离子电池负极材料的制备及拉曼研究[J]. 电化学(中英文), 2020, 26(3): 328-337. |
| [10] | 袁 洋, 王佳新, 曹玉华. 磁性印迹纳米粒子固定血红蛋白修饰磁性电极构建过氧化氢传感器[J]. 电化学(中英文), 2019, 25(6): 757-763. |
| [11] | 贾瑞虹, 张瑾轩, 张晓东, 李美仙. 电催化过氧化氢还原的纳米材料作为潜在的辐射防护剂[J]. 电化学(中英文), 2019, 25(3): 340-348. |
| [12] | 修陆洋, 于梦舟, 杨鹏举, 王治宇, 邱介山. 基于内嵌钴/氮掺杂多孔碳三维石墨烯笼的抗团聚高效氧还原电催化剂[J]. 电化学(中英文), 2018, 24(6): 715-725. |
| [13] | 杨波,金直航,赵亚萍,蔡再生. 自支撑柔性氮掺杂碳织物电极的制备与性能研究[J]. 电化学(中英文), 2018, 24(4): 359-366. |
| [14] | 张思宇,王会娟,李书芳,屈建莹. 基于碳复合Fe3O4纳米粒子的过氧化氢电化学传感器研究[J]. 电化学(中英文), 2018, 24(3): 279-284. |
| [15] | 黄涛,陶广智,杨重庆,鲁登,马列,吴东清. 氮掺杂碳片的模板诱导制备及其在超级电容器中的应用[J]. 电化学(中英文), 2017, 23(5): 604-609. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||