Page 44 - Read Online
P. 44
Zhang et al. J Mater Inf 2024;4:1 https://dx.doi.org/10.20517/jmi.2023.34 Page 13 of 14
Copyright
© The Author(s) 2024.
REFERENCES
1. Li L, Wang P, Shao Q, Huang X. Metallic nanostructures with low dimensionality for electrochemical water splitting. Chem Soc Rev
2020;49:3072-106. DOI
2. Jiao Y, Zheng Y, Jaroniec M, Qiao SZ. Design of electrocatalysts for oxygen- and hydrogen-involving energy conversion reactions.
Chem Soc Rev 2015;44:2060-86. DOI PubMed
3. Huang J, Jiang Y, An T, Cao M. Increasing the active sites and intrinsic activity of transition metal chalcogenide electrocatalysts for
enhanced water splitting. J Mater Chem A 2020;8:25465-98. DOI
4. Kim HJ, Kim HY, Joo J, et al. Recent advances in non-precious group metal-based catalysts for water electrolysis and beyond. J Mater
Chem A 2022;10:50-88. DOI
5. Gray HB. Powering the planet with solar fuel. Nat Chem 2009;1:7. DOI PubMed
6. Liu M, Zhang R, Chen W. Graphene-supported nanoelectrocatalysts for fuel cells: synthesis, properties, and applications. Chem Rev
2014;114:5117-60. DOI
7. Majlan E, Rohendi D, Daud W, Husaini T, Haque M. Electrode for proton exchange membrane fuel cells: a review. Renew Sust Energ
Rev 2018;89:117-34. DOI
8. Nørskov JK, Bligaard T, Logadottir A, et al. Trends in the exchange current for hydrogen evolution. J Electrochem Soc 2005;152:J23.
DOI
9. Seh ZW, Kibsgaard J, Dickens CF, Chorkendorff I, Nørskov JK, Jaramillo TF. Combining theory and experiment in electrocatalysis:
insights into materials design. Science 2017;355:eaad4998. DOI PubMed
10. Xu H, Cheng D, Cao D, Zeng XC. A universal principle for a rational design of single-atom electrocatalysts. Nat Catal 2018;1:339-48.
DOI
11. Benck JD, Hellstern TR, Kibsgaard J, Chakthranont P, Jaramillo TF. Catalyzing the hydrogen evolution reaction (HER) with
molybdenum sulfide nanomaterials. ACS Catal 2014;4:3957-71. DOI
12. Du H, Kong RM, Guo X, Qu F, Li J. Recent progress in transition metal phosphides with enhanced electrocatalysis for hydrogen
evolution. Nanoscale 2018;10:21617-24. DOI PubMed
13. Sun J, Ren M, Yu L, et al. Highly efficient hydrogen evolution from a mesoporous hybrid of nickel phosphide nanoparticles anchored
on cobalt phosphosulfide/phosphide nanosheet arrays. Small 2019;15:e1804272. DOI PubMed
14. Yan Q, Chen X, Wei T, et al. Hierarchical edge-rich nickel phosphide nanosheet arrays as efficient electrocatalysts toward hydrogen
evolution in both alkaline and acidic conditions. ACS Sustainable Chem Eng 2019;7:7804-11. DOI
15. Gao Q, Zhang W, Shi Z, Yang L, Tang Y. Structural design and electronic modulation of transition-metal-carbide electrocatalysts
toward efficient hydrogen evolution. Adv Mater 2019;31:1802880. DOI
16. Han N, Yang KR, Lu Z, et al. Nitrogen-doped tungsten carbide nanoarray as an efficient bifunctional electrocatalyst for water splitting
in acid. Nat Commun 2018;9:924. DOI PubMed PMC
17. Zhou S, Zhou G, Jiang S, Fan P, Hou H. Flexible and refractory tantalum carbide-carbon electrospun nanofibers with high modulus
and electric conductivity. Mater Lett 2017;200:97-100. DOI
18. Zhang B, Liu J, Wang J, et al. Interface engineering: The Ni(OH) /MoS heterostructure for highly efficient alkaline hydrogen
2
2
evolution. Nano Energy 2017;37:74-80. DOI
19. Ling Y, Yang Z, Zhang Q, Zhang Y, Cai W, Cheng H. A self-template synthesis of defect-rich WS as a highly efficient electrocatalyst
2
for the hydrogen evolution reaction. Chem Commun 2018;54:2631-4. DOI
20. Pan Y, Liu S, Sun K, et al. A bimetallic Zn/Fe polyphthalocyanine-derived single-atom Fe-N catalytic site:a superior trifunctional
4
catalyst for overall water splitting and Zn-air batteries. Angew Chem Int Ed Engl 2018;57:8614-8. DOI PubMed
21. Cao L, Luo Q, Chen J, et al. Dynamic oxygen adsorption on single-atomic Ruthenium catalyst with high performance for acidic
oxygen evolution reaction. Nat Commun 2019;10:4849. DOI PubMed PMC
22. Varela AS, Ju W, Strasser P. Molecular nitrogen-carbon catalysts, solid metal organic framework catalysts, and solid metal/nitrogen-
doped carbon (MNC) catalysts for the electrochemical CO reduction. Adv Energy Mater 2018;8:1703614. DOI
2
23. Yao Y, Hu S, Chen W, et al. Engineering the electronic structure of single atom Ru sites via compressive strain boosts acidic water
oxidation electrocatalysis. Nat Catal 2019;2:304-13. DOI
24. Wang X, Li Z, Qu Y, et al. Review of metal catalysts for oxygen reduction reaction: from nanoscale engineering to atomic design.
Chem 2019;5:1486-511. DOI
25. Zhao Y, Zhou H, Chen W, et al. Two-step carbothermal welding to access atomically dispersed Pd on three-dimensional zirconia
1
nanonet for direct indole synthesis. J Am Chem Soc 2019;141:10590-4. DOI PubMed
26. Lei Y, Wang Y, Liu Y, et al. Designing atomic active centers for hydrogen evolution electrocatalysts. Angew Chem Int Ed Engl
2020;59:20794-812. DOI PubMed
27. Wang Y, Su H, He Y, et al. Advanced electrocatalysts with single-metal-atom active sites. Chem Rev 2020;120:12217-314. DOI
PubMed
28. Zhuo HY, Zhang X, Liang JX, Yu Q, Xiao H, Li J. Theoretical understandings of graphene-based metal single-atom catalysts: stability

