OpenAlex Citation Counts

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OpenAlex is a bibliographic catalogue of scientific papers, authors and institutions accessible in open access mode, named after the Library of Alexandria. It's citation coverage is excellent and I hope you will find utility in this listing of citing articles!

If you click the article title, you'll navigate to the article, as listed in CrossRef. If you click the Open Access links, you'll navigate to the "best Open Access location". Clicking the citation count will open this listing for that article. Lastly at the bottom of the page, you'll find basic pagination options.

Requested Article:

Alloying‐Triggered Phase Engineering of NiFe System via Laser‐Assisted Al Incorporation for Full Water Splitting
Xiaoyu Liu, Haolin Lu, Shengli Zhu, et al.
Angewandte Chemie International Edition (2023) Vol. 62, Iss. 13
Closed Access | Times Cited: 53

Showing 1-25 of 53 citing articles:

Low Rh doping accelerated HER/OER bifunctional catalytic activities of nanoflower-like Ni-Co sulfide for greatly boosting overall water splitting
Jia-Chun Gan, Zuo-Feng Jiang, Keming Fang, et al.
Journal of Colloid and Interface Science (2024) Vol. 677, pp. 221-231
Closed Access | Times Cited: 46

Engineering Lattice Oxygen Regeneration of NiFe Layered Double Hydroxide Enhances Oxygen Evolution Catalysis Durability
Fengyu Wu, Fenyang Tian, Menggang Li, et al.
Angewandte Chemie International Edition (2024) Vol. 64, Iss. 1
Open Access | Times Cited: 34

Self‐Limited Formation of Nanoporous Nickel Heterostructure Catalyst for Electrochemical Hydrogen Production
Qiao Lin, Cong Xi, Chao Li, et al.
Advanced Functional Materials (2024) Vol. 34, Iss. 37
Closed Access | Times Cited: 24

Structural and electronic modulation of (Fe,Ni)2P@Ni2P heterostructure for efficient overall water splitting at high current density
Yaxin Li, Xin Yu, Juan Gao, et al.
Chemical Engineering Journal (2023) Vol. 470, pp. 144373-144373
Closed Access | Times Cited: 37

UV‐Induced Synthesis of Graphene Supported Iridium Catalyst with Multiple Active Sites for Overall Water Splitting
Xu Li, Jianyun Cao, Jiexin Chen, et al.
Advanced Functional Materials (2024) Vol. 34, Iss. 22
Closed Access | Times Cited: 15

Three-dimensional interconnected nanofibers consisting of ultra-small Ni-doped Co3O4 nanoparticles for acidic overall water splitting at high current density
Tiantian Wang, Yue Shi, Jiawei Fei, et al.
Applied Catalysis B Environment and Energy (2024) Vol. 358, pp. 124367-124367
Closed Access | Times Cited: 13

NiFe‐Based Electrocatalysts for Alkaline Oxygen Evolution: Challenges, Strategies, and Advances Toward Industrial‐Scale Deployment
Yansong Zhou, Zhitong Wang, Minghui Cui, et al.
Advanced Functional Materials (2024)
Closed Access | Times Cited: 11

Highly Active and Stable Al-Doped NiFe Self-Supported Oxygen Evolution Reaction Electrode for Alkaline Water Electrolysis
Byung‐Jo Lee, Sang‐Mun Jung, Guoliang Yu, et al.
ACS Catalysis (2025), pp. 1123-1134
Closed Access | Times Cited: 1

Promoted Overall Water Splitting Catalytic Activity and Durability of Ni3Fe Alloy by Designing N‐Doped Carbon Encapsulation
Dong In Jeong, Ui Young Lee, Hyunchul Kim, et al.
Small (2024)
Closed Access | Times Cited: 7

Ultrathin two-dimensional medium-entropy oxide as a highly efficient and stable electrocatalyst for oxygen evolution reaction
Guangyuan Yan, Tianlu Wang, Biwei Zhao, et al.
Nano Research (2024) Vol. 17, Iss. 4, pp. 2555-2562
Closed Access | Times Cited: 7

Tuning the Electronic Property of Reconstructed Atomic Ni‐CuO Cluster Supported on N/O‐C for Electrocatalytic Oxygen Evolution
Xinran Li, Yang‐Yi Liu, Cheng Li, et al.
Advanced Science (2024) Vol. 11, Iss. 22
Open Access | Times Cited: 7

Microenvironment engineering of gas-involving energy electrocatalysis and device applications
Hui Zhao, Jin‐Tao Ren, Zhong‐Yong Yuan
Coordination Chemistry Reviews (2024) Vol. 514, pp. 215901-215901
Closed Access | Times Cited: 7

Synergistic Effect of P and Co Dual Doping Endows CuNi with High–Performance Hydrogen Evolution Reaction
Quanshuo Wu, Junli Wang, Xuanbing Wang, et al.
Small (2024)
Closed Access | Times Cited: 7

Leaf‐Structure‐Inspired Through‐Hole Electrode with Boosted Mass Transfer and Photothermal Effect for Oxygen Evolution Reactions
Yaya Zhou, Yibing Ma, Xinyu Wang, et al.
Advanced Functional Materials (2023) Vol. 33, Iss. 43
Closed Access | Times Cited: 13

Charge redistribution on NiCo-P hybrid nanoneedle via Br doping enables highly HER
Xuanbing Wang, Jinlong Wei, Junli Wang, et al.
Applied Surface Science (2024) Vol. 654, pp. 159540-159540
Closed Access | Times Cited: 4

Oxygen vacancy and heterointerface engineering of Ni3Fe/NiFe2O4 @N-GTs oxygen evolution reaction electrocatalyst for water splitting
Jiachen Zou, Guanying Song, Anguo Cui, et al.
Diamond and Related Materials (2024) Vol. 144, pp. 110999-110999
Closed Access | Times Cited: 4

Dual-active-site design of FeNi3 for electrocatalytic nitrate reduction to ammonia
Kaiyu Qu, Xiaojuan Zhu, Leyang Song, et al.
Chemical Engineering Journal (2025), pp. 161814-161814
Closed Access

Regulating Electronic Structure of Iron-Nickel Oxides to Boost Kinetics and Stability for Oxygen Evolution Reaction
Muhammad Saqib Rabbani, Shuai Wei, Muhammad Imran Anwar, et al.
(2025)
Closed Access

NiVFe-LDH nanosheets reinforced MoS2 heterogeneous interface design for glycol-assisted water electrolysis
Suzhao Yang, Jie Han, Weiwei Bao, et al.
Fuel (2025) Vol. 388, pp. 134482-134482
Closed Access

Transition metal induced metal oxide lattice strain for efficient and stable alkaline water splitting
Kai Zhang, Yuhong Luo, Hongyu Wang, et al.
Chemical Engineering Journal (2025), pp. 161686-161686
Closed Access

Interface engineering strategies for enhanced electrocatalytic hydrogen evolution reaction
Manjinder Singh, Dasu Ram Paudel, Hayoung Kim, et al.
Energy Advances (2025)
Open Access

Directional interface electron transfer from Fe2O3 to biomass-derived carbon originated from F-dopant-induced site-specific growth
Xiaoyun Zhang, Liang Li, Kai Cheng, et al.
Carbon (2023) Vol. 216, pp. 118513-118513
Open Access | Times Cited: 9

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