Timothy L. Kelly

8.7k total citations · 4 hit papers
92 papers, 7.6k citations indexed

About

Timothy L. Kelly is a scholar working on Electrical and Electronic Engineering, Materials Chemistry and Polymers and Plastics. According to data from OpenAlex, Timothy L. Kelly has authored 92 papers receiving a total of 7.6k indexed citations (citations by other indexed papers that have themselves been cited), including 50 papers in Electrical and Electronic Engineering, 36 papers in Materials Chemistry and 32 papers in Polymers and Plastics. Recurrent topics in Timothy L. Kelly's work include Conducting polymers and applications (28 papers), Organic Electronics and Photovoltaics (26 papers) and Perovskite Materials and Applications (24 papers). Timothy L. Kelly is often cited by papers focused on Conducting polymers and applications (28 papers), Organic Electronics and Photovoltaics (26 papers) and Perovskite Materials and Applications (24 papers). Timothy L. Kelly collaborates with scholars based in Canada, United States and Japan. Timothy L. Kelly's co-authors include Dianyi Liu, Jinli Yang, Braden D. Siempelkamp, Mahesh K. Gangishetty, Soumya Kundu, Filippo De Angelis, Edoardo Mosconi, Michael O. Wolf, Robert W. J. Scott and Kee Eun Lee and has published in prestigious journals such as Journal of the American Chemical Society, Chemical Society Reviews and Advanced Materials.

In The Last Decade

Timothy L. Kelly

87 papers receiving 7.5k citations

Hit Papers

Perovskite solar cells wi... 2013 2026 2017 2021 2013 2015 2015 2014 500 1000 1.5k 2.0k

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Timothy L. Kelly Canada 35 6.4k 4.5k 3.2k 785 428 92 7.6k
Andrea Listorti Italy 39 4.1k 0.6× 3.8k 0.8× 1.6k 0.5× 495 0.6× 254 0.6× 114 5.9k
Pierre Audebert France 43 2.7k 0.4× 2.3k 0.5× 2.2k 0.7× 529 0.7× 532 1.2× 208 6.0k
Stéphane Guillerez France 30 3.2k 0.5× 1.7k 0.4× 2.3k 0.7× 499 0.6× 558 1.3× 61 5.1k
Xiaohe Miao China 27 3.0k 0.5× 2.8k 0.6× 731 0.2× 567 0.7× 371 0.9× 82 4.4k
Müjdat Çağlar Türkiye 39 3.5k 0.6× 4.6k 1.0× 789 0.2× 1.6k 2.0× 439 1.0× 143 5.7k
Emilio J. Juárez‐Pérez Spain 37 7.8k 1.2× 5.4k 1.2× 3.5k 1.1× 430 0.5× 242 0.6× 76 8.9k
Yasemin Çağlar Türkiye 39 3.3k 0.5× 4.2k 0.9× 709 0.2× 1.2k 1.6× 397 0.9× 116 5.2k
Xu‐Hui Zhu China 34 2.6k 0.4× 1.7k 0.4× 1.3k 0.4× 376 0.5× 207 0.5× 103 3.4k
K.K. Banger United States 24 2.6k 0.4× 2.2k 0.5× 593 0.2× 297 0.4× 313 0.7× 63 3.3k
Meng Kai Lü China 35 2.1k 0.3× 3.5k 0.8× 751 0.2× 563 0.7× 423 1.0× 131 4.6k

Countries citing papers authored by Timothy L. Kelly

Since Specialization
Citations

This map shows the geographic impact of Timothy L. Kelly's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Timothy L. Kelly with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Timothy L. Kelly more than expected).

Fields of papers citing papers by Timothy L. Kelly

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Timothy L. Kelly. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Timothy L. Kelly. The network helps show where Timothy L. Kelly may publish in the future.

Co-authorship network of co-authors of Timothy L. Kelly

This figure shows the co-authorship network connecting the top 25 collaborators of Timothy L. Kelly. A scholar is included among the top collaborators of Timothy L. Kelly based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Timothy L. Kelly. Timothy L. Kelly is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
1.
Kelly, Timothy L., et al.. (2025). Impact of the Hole-Transport Layer on the Thermal Stability of Inverted Perovskite Solar Cells: An Operando X-ray Scattering Study. ACS Applied Materials & Interfaces. 17(24). 35619–35630.
2.
Kelly, Timothy L., et al.. (2025). Perovskite Solar Cells: From Fabrication to Failure. ACS Applied Electronic Materials. 7(9). 3621–3631.
3.
Manion, Joseph G., et al.. (2024). Self-assembly of poly (ionic liquid) block copolymer based dielectrics on semiconductor formation and performance. Journal of Materials Chemistry C. 12(44). 17902–17912. 4 indexed citations
4.
Kaur, Simranjeet, et al.. (2024). Electrostatic Correlations Lead to High Capacitance in Zwitterion-Containing Thin Films. ACS Applied Materials & Interfaces. 16(29). 38290–38299. 2 indexed citations
5.
Kelly, Timothy L., et al.. (2024). Synthesis of Conjugated Polymers: Comparing the Indophenine Reaction with Traditional Methods. ACS Applied Polymer Materials. 6(14). 8318–8325. 3 indexed citations
6.
Kelly, Timothy L., et al.. (2023). Indophenine Reaction as a Method for Synthesizing Conjugated Polymers with Sub-1 eV Optical Bandgaps. ACS Applied Polymer Materials. 5(7). 5687–5695. 2 indexed citations
7.
King, Benjamin, Joseph G. Manion, Jaclyn L. Brusso, et al.. (2023). Toward Weak Epitaxial Growth of Silicon Phthalocyanines: How the Choice of the Optimal Templating Layer Differs from Traditional Phthalocyanines. ACS Applied Electronic Materials. 5(12). 7023–7033. 10 indexed citations
9.
Manion, Joseph G., et al.. (2022). Poly(ionic liquid) Gating Materials for High-Performance Organic Thin-Film Transistors: The Role of Block Copolymer Self-Assembly at the Semiconductor Interface. ACS Applied Materials & Interfaces. 14(35). 40361–40370. 8 indexed citations
10.
Niazi, Muhammad Rizwan, et al.. (2022). Scalable Non-Halogenated Co-solvent System for Large-Area, Four-Layer Slot-Die-Coated Organic Photovoltaics. ACS Applied Materials & Interfaces. 14(51). 57055–57063. 12 indexed citations
11.
Kelly, Timothy L., et al.. (2022). Self-assembly of PBTTT–C14 thin films in supercritical fluids. Materials Advances. 3(5). 2515–2523. 4 indexed citations
12.
Kelly, Timothy L., et al.. (2021). The role of solvent additive in polymer crystallinity during physical supercritical fluid deposition. New Journal of Chemistry. 45(26). 11786–11796. 3 indexed citations
13.
Kelly, Timothy L., et al.. (2020). Regioisomerically Pure 1,7-Dicyanoperylene Diimide Dimer for Charge Extraction from Donors with High Electron Affinities. ACS Omega. 5(27). 16547–16555. 7 indexed citations
14.
Kelly, Timothy L., et al.. (2020). Physical supercritical fluid deposition of polymer films: controlling the crystallinity with pressure. Materials Chemistry Frontiers. 5(3). 1428–1437. 5 indexed citations
15.
Hendsbee, Arthur D., et al.. (2020). Bisisoindigo–Benzothiadiazole Copolymers: Materials for Ambipolar and n-Channel OTFTs with Low Threshold Voltages. ACS Applied Electronic Materials. 2(7). 2039–2048. 15 indexed citations
16.
Li, Yunlong, Weihai Sun, Feidan Gu, et al.. (2019). Soldering Grain Boundaries Yields Inverted Perovskite Solar Cells with Enhanced Open‐Circuit Voltages. Advanced Materials Interfaces. 6(14). 18 indexed citations
17.
18.
Kelly, Timothy L., et al.. (2018). Improving the stability and decreasing the trap state density of mixed-cation perovskite solar cells through compositional engineering. Sustainable Energy & Fuels. 2(6). 1332–1341. 37 indexed citations
19.
Kelly, Timothy L., et al.. (2017). Lewis Acid–Base Chemistry of 7-Azaisoindigo-Based Organic Semiconductors. ACS Applied Materials & Interfaces. 9(29). 24788–24796. 20 indexed citations
20.
Kundu, Soumya & Timothy L. Kelly. (2017). Improving the moisture stability of perovskite solar cells by using PMMA/P3HT based hole-transport layers. Materials Chemistry Frontiers. 2(1). 81–89. 49 indexed citations

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

Explore authors with similar magnitude of impact

Rankless by CCL
2026