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:

Electroconductive PEDOT nanoparticle integrated scaffolds for spinal cord tissue repair
Aleksandra Serafin, Mario Culebras Rubio, Marta Carsí, et al.
Biomaterials Research (2022) Vol. 26, Iss. 1
Open Access | Times Cited: 49

Showing 1-25 of 49 citing articles:

Synthesis and evaluation of alginate, gelatin, and hyaluronic acid hybrid hydrogels for tissue engineering applications
Aleksandra Serafin, Mario Culebras, Maurice N. Collins
International Journal of Biological Macromolecules (2023) Vol. 233, pp. 123438-123438
Open Access | Times Cited: 97

3D printable electroconductive gelatin-hyaluronic acid materials containing polypyrrole nanoparticles for electroactive tissue engineering
Aleksandra Serafin, Mario Culebras, Joaquím M. Oliveira, et al.
Advanced Composites and Hybrid Materials (2023) Vol. 6, Iss. 3
Open Access | Times Cited: 48

Advances in electroactive biomaterials: Through the lens of electrical stimulation promoting bone regeneration strategy
Songyang Luo, Chengshuo Zhang, Wei Xiong, et al.
Journal of Orthopaedic Translation (2024) Vol. 47, pp. 191-206
Open Access | Times Cited: 23

M2 microglia-derived exosome-loaded electroconductive hydrogel for enhancing neurological recovery after spinal cord injury
Pengfei Guan, Lei Fan, Zhaobo Zhu, et al.
Journal of Nanobiotechnology (2024) Vol. 22, Iss. 1
Open Access | Times Cited: 18

Intrinsically Adhesive and Conductive Hydrogel Bridging the Bioelectronic–Tissue Interface for Biopotentials Recording
J. Y. Lao, Yang Jiao, Yingchao Zhang, et al.
ACS Nano (2025)
Closed Access | Times Cited: 2

Chitosan-reinforced gelatin composite hydrogel as a tough, anti-freezing, and flame-retardant gel polymer electrolyte for flexible supercapacitors
Syed Farrukh Alam Zaidi, Aiman Saeed, Van‐Chuong Ho, et al.
International Journal of Biological Macromolecules (2023) Vol. 234, pp. 123725-123725
Closed Access | Times Cited: 24

3D-printing-assisted synthesis of paclitaxel-loaded niosomes functionalized by cross-linked gelatin/alginate composite: Large-scale synthesis and in-vitro anti-cancer evaluation
Fatemeh Hosseini, Masoumeh Mirzaei Chegeni, Ali Bidaki, et al.
International Journal of Biological Macromolecules (2023) Vol. 242, pp. 124697-124697
Closed Access | Times Cited: 24

Conducting polymer-based scaffolds for neuronal tissue engineering
H. Yi, Rajkumar Patel, Kapil D. Patel, et al.
Journal of Materials Chemistry B (2023) Vol. 11, Iss. 46, pp. 11006-11023
Closed Access | Times Cited: 24

Nanotechnological Research for Regenerative Medicine: The Role of Hyaluronic Acid
Flavia Carton, Manuela Malatesta
International Journal of Molecular Sciences (2024) Vol. 25, Iss. 7, pp. 3975-3975
Open Access | Times Cited: 11

On the design of lignin reinforced acrylic acid/hyaluronic acid adhesive hydrogels with conductive PEDOT:HA nanoparticles
Caitriona Winters, Marta Carsí, M. J. Sanchı́s, et al.
International Journal of Biological Macromolecules (2024) Vol. 273, pp. 133093-133093
Open Access | Times Cited: 10

Rheological Characterization and Printability of Sodium Alginate–Gelatin Hydrogel for 3D Cultures and Bioprinting
Mohan Kumar Dey, Ram V. Devireddy
Biomimetics (2025) Vol. 10, Iss. 1, pp. 28-28
Open Access | Times Cited: 1

Advances in Conductive Hydrogel for Spinal Cord Injury Repair and Regeneration
Cheng Qin, Zhiping Qi, Su Pan, et al.
International Journal of Nanomedicine (2023) Vol. Volume 18, pp. 7305-7333
Open Access | Times Cited: 23

Recent advances in 3D printable conductive hydrogel inks for neural engineering
Sung‐Dong Kim, Kyoungryong Kim, Mikyung Shin
Nano Convergence (2023) Vol. 10, Iss. 1
Open Access | Times Cited: 22

A review of glycosaminoglycan-modified electrically conductive polymers for biomedical applications
Lisa Schöbel, Aldo R. Boccaccını
Acta Biomaterialia (2023) Vol. 169, pp. 45-65
Open Access | Times Cited: 19

Application of Conductive Hydrogels on Spinal Cord Injury Repair: A Review
Nur Hidayah Shahemi, Mohd Muzamir Mahat, Nurul Ain Najihah Asri, et al.
ACS Biomaterials Science & Engineering (2023) Vol. 9, Iss. 7, pp. 4045-4085
Closed Access | Times Cited: 17

Biomimetic alginate-based electroconductive nanofibrous scaffolds for bone tissue engineering application
Morteza Eskandani, Hossein Derakhshankhah, Rana Jahanban-­Esfahlan, et al.
International Journal of Biological Macromolecules (2023) Vol. 249, pp. 125991-125991
Closed Access | Times Cited: 17

Current Biomedical Applications of 3D-Printed Hydrogels
Allan John R. Barcena, Kashish Dhal, Parimal Patel, et al.
Gels (2023) Vol. 10, Iss. 1, pp. 8-8
Open Access | Times Cited: 17

Fabrication of Sodium Trimetaphosphate-Based PEDOT:PSS Conductive Hydrogels
M Reynolds, Lindsay M. Stoy, Jindi Sun, et al.
Gels (2024) Vol. 10, Iss. 2, pp. 115-115
Open Access | Times Cited: 8

Electrically Conductive Coatings in Tissue Engineering
Abolfazl Anvari Kohestani, Zhiyan Xu, Fatih Erdem Baştan, et al.
Acta Biomaterialia (2024) Vol. 186, pp. 30-62
Closed Access | Times Cited: 8

3D bioprinting approaches for spinal cord injury repair
Jingwei Jiu, Xuelong Li, Dijun Li, et al.
Biofabrication (2024) Vol. 16, Iss. 3, pp. 032003-032003
Closed Access | Times Cited: 7

Electrostimulation via a 3D-printed, biomimetic, neurotrophic, electroconductive scaffold for the promotion of axonal regrowth after spinal cord injury
Liam M. Leahy, Ian Woods, Javier Gutierrez Gonzalez, et al.
Materials Today (2024) Vol. 79, pp. 60-72
Open Access | Times Cited: 7

Advances in electroactive bioscaffolds for repairing spinal cord injury
Zeqi Liu, Jiahui Lai, Dexin Kong, et al.
Biomedical Materials (2024) Vol. 19, Iss. 3, pp. 032005-032005
Closed Access | Times Cited: 5

Progress in Nano-Biosensors for Non-Invasive Monitoring of Stem Cell Differentiation
Minji Kang, Yeon‐Woo Cho, Tae‐Hyung Kim
Biosensors (2023) Vol. 13, Iss. 5, pp. 501-501
Open Access | Times Cited: 13

Ruxolitinib improves the inflammatory microenvironment, restores glutamate homeostasis, and promotes functional recovery after spinal cord injury
Jiang Cao, Xiao Yu, Jingcheng Liu, et al.
Neural Regeneration Research (2024) Vol. 19, Iss. 11, pp. 2499-2512
Open Access | Times Cited: 4

Improving the protective ability of lignin against vascular and neurological development in BPAF-induced zebrafish by high-pressure homogenization technology
Junping Deng, Jie Gu, Xiaoxue Zhao, et al.
International Journal of Biological Macromolecules (2023) Vol. 231, pp. 123356-123356
Closed Access | Times Cited: 10

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