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:

Engineering the charge extraction and trap states of Sb2S3 solar cells
Yiming Qi, Yanyan Li, Qianqian Lin
Applied Physics Letters (2022) Vol. 120, Iss. 22
Closed Access | Times Cited: 27

Showing 1-25 of 27 citing articles:

A Novel Multi‐Sulfur Source Collaborative Chemical Bath Deposition Technology Enables 8%‐Efficiency Sb2S3 Planar Solar Cells
Shaoying Wang, Yuqi Zhao, Bo Che, et al.
Advanced Materials (2022) Vol. 34, Iss. 41
Closed Access | Times Cited: 117

Grain Engineering of Sb2S3 Thin Films to Enable Efficient Planar Solar Cells with High Open‐Circuit Voltage
Xinnian Liu, Zhiyuan Cai, Lei Wan, et al.
Advanced Materials (2023) Vol. 36, Iss. 1
Open Access | Times Cited: 41

All-Inorganic Hydrothermally Processed Semitransparent Sb2S3 Solar Cells with CuSCN as the Hole Transport Layer
Pankaj Kumar, Martin Eriksson, Dzmitry S. Kharytonau, et al.
ACS Applied Energy Materials (2024) Vol. 7, Iss. 4, pp. 1421-1432
Open Access | Times Cited: 11

Additive engineering for Sb2S3 indoor photovoltaics with efficiency exceeding 17%
Xiao Chen, Xiaoxuan Shu, Jiacheng Zhou, et al.
Light Science & Applications (2024) Vol. 13, Iss. 1
Open Access | Times Cited: 10

A Robust Hydrothermal Sulfuration Strategy toward Effective Defect Passivation Enabling 6.92% Efficiency Sb2S3 Solar Cells
Yuqian Huang, Huihui Gao, Xiaoqi Peng, et al.
Solar RRL (2023) Vol. 7, Iss. 6
Closed Access | Times Cited: 22

Band offset engineering in antimony sulfide (Sb2S3) solar cells, using SCAPS simulation: A route toward PCE > 10%
Swapnil Barthwal, Ramashanker Gupta, Amit Kumar, et al.
Optik (2023) Vol. 282, pp. 170868-170868
Closed Access | Times Cited: 18

Innovative In Situ Passivation Strategy for High‐Efficiency Sb2(S,Se)3 Solar Cells
Yuqi Zhao, Wentao Xu, Jing Wen, et al.
Advanced Materials (2024)
Closed Access | Times Cited: 7

Low‐Cost Antimony Selenosulfide with Tunable Bandgap for Highly Efficient Solar Cells
Jiabin Dong, Huizhen Liu, Zixiu Cao, et al.
Small (2022) Vol. 19, Iss. 9
Closed Access | Times Cited: 25

Precursor Engineering of Solution‐Processed Sb2S3 Solar Cells
Yanyan Li, Ruiming Li, Zhenglin Jia, et al.
Small (2023) Vol. 20, Iss. 10
Closed Access | Times Cited: 16

Modulating the Quantum Efficiency of Sb2S3‐Based Photodiodes Based on Conventional and Inverted Structures
Ruiming Li, Haiyi Zeng, Songxue Bai, et al.
Laser & Photonics Review (2023) Vol. 17, Iss. 5
Closed Access | Times Cited: 14

Strong Chelating Additive and Modified Electron Transport Layer for 8.26%‐Efficient Sb2S3 Solar Cells
Guohuan Shen, An Ke, Shi‐Wu Chen, et al.
Advanced Energy Materials (2025)
Closed Access

Optoelectronic Modulation of Silver Antimony Sulfide Thin Films for Photodetection
Yujie Yang, Huihuang Huang, Songxue Bai, et al.
The Journal of Physical Chemistry Letters (2022) Vol. 13, Iss. 34, pp. 8086-8090
Closed Access | Times Cited: 18

Efficient Selenium Photodiodes Based on an Inverted P-i-N Structure
Ruiming Li, Xin Chen, Songxue Bai, et al.
Chemistry of Materials (2024) Vol. 36, Iss. 11, pp. 5846-5854
Closed Access | Times Cited: 3

Atomic-layer-deposited TiO2 and SnO2 coupled with CdS as double buffer layers for HTL-free Sb2S3 thin-film solar cells
Pravin S. Pawar, Raju Nandi, Neerugatti KrishnaRao Eswar, et al.
Solar Energy (2022) Vol. 246, pp. 141-151
Closed Access | Times Cited: 15

High-Gain Low-Noise Phototransistors Based on Solution-Processed Bi2S3 Nanocrystals
Yujie Yang, Zhenglin Jia, Yanyan Li, et al.
Physical Review Applied (2023) Vol. 19, Iss. 6
Closed Access | Times Cited: 8

Orientation control of close-spaced sublimation processed Sb2S3 thin films for efficient and stable planar solar cells
Ru Zhou, Bo Tang, Qiang Xie, et al.
Applied Physics Letters (2024) Vol. 124, Iss. 23
Closed Access | Times Cited: 2

Interfacial Engineering of High-Performance, Solution-Processed Sb2S3 Phototransistors
Huihuang Huang, Yujie Yang, Hongyi Chen, et al.
ACS Applied Materials & Interfaces (2022) Vol. 14, Iss. 51, pp. 57419-57427
Closed Access | Times Cited: 10

A comprehensive insight into deep-level defect engineering in antimony chalcogenide solar cells
Swapnil Barthwal, Siddhant Singh, Abhishek K. Chauhan, et al.
Materials Advances (2023) Vol. 4, Iss. 23, pp. 5998-6030
Open Access | Times Cited: 4

Single-crystalline Sb2S3 microtubes for high-performance broadband visible photodetection
Shili Fu, Xiaohui Liu, Haoyun Dou, et al.
Journal of Materials Chemistry A (2024) Vol. 12, Iss. 41, pp. 28012-28022
Closed Access | Times Cited: 1

Inheriting Sb2Se3 Nanorods on Sb2S3 Nanorod Arrays for Effective Light Harvesting and Charge Extraction in Solar Cells
Boyang Zhou, T. Kimura, Yutaka Okazaki, et al.
ACS Applied Nano Materials (2022) Vol. 5, Iss. 11, pp. 16082-16093
Closed Access | Times Cited: 5

A Review of Carrier Transport in High‐Efficiency Sb2(S,Se)3 Solar Cells
Yuqi Zhao, Xueling Chen, Jianmin Li, et al.
Solar RRL (2023) Vol. 7, Iss. 23
Closed Access | Times Cited: 2

Resolving the Trap Distribution of Chalcogenide-Based Heterojunctions via Optical Injection Deep Level Transient Spectroscopy
Xin Chen, Yujie Yang, Qianqian Lin
The Journal of Physical Chemistry Letters (2024) Vol. 15, Iss. 35, pp. 9058-9063
Closed Access

High-Speed and Low-Noise Photodetectors Based on Solution-Processed AgInS2
Zhenglin Jia, Ruiming Li, Songxue Bai, et al.
ACS Photonics (2024)
Closed Access

Cadmium-free electron transport layers for hydrothermally processed semitransparent Sb2S3 solar cells
Pankaj Kumar, Joseph P. Thomas, Dzmitry S. Kharytonau, et al.
Nano Energy (2024), pp. 110539-110539
Closed Access

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