Motiur Rahman Khan

808 total citations · 1 hit paper
15 papers, 510 citations indexed

About

Motiur Rahman Khan is a scholar working on Electrical and Electronic Engineering, Polymers and Plastics and Materials Chemistry. According to data from OpenAlex, Motiur Rahman Khan has authored 15 papers receiving a total of 510 indexed citations (citations by other indexed papers that have themselves been cited), including 15 papers in Electrical and Electronic Engineering, 10 papers in Polymers and Plastics and 6 papers in Materials Chemistry. Recurrent topics in Motiur Rahman Khan's work include Conducting polymers and applications (10 papers), Organic Electronics and Photovoltaics (8 papers) and Perovskite Materials and Applications (6 papers). Motiur Rahman Khan is often cited by papers focused on Conducting polymers and applications (10 papers), Organic Electronics and Photovoltaics (8 papers) and Perovskite Materials and Applications (6 papers). Motiur Rahman Khan collaborates with scholars based in India, Germany and France. Motiur Rahman Khan's co-authors include Ulrich W. Paetzold, Uli Lemmer, Tobias Abzieher, Ihteaz M. Hossain, Saba Gharibzadeh, Bahram Abdollahi Nejand, Bryce S. Richards, Paul Faßl, Jan P. Hofmann and M. Frericks and has published in prestigious journals such as Energy & Environmental Science, Journal of Applied Physics and Journal of Materials Chemistry A.

In The Last Decade

Motiur Rahman Khan

15 papers receiving 503 citations

Hit Papers

Two birds with one stone: dual grain-boundary and interfa... 2021 2026 2022 2024 2021 50 100 150 200

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Motiur Rahman Khan India 10 467 285 239 26 24 15 510
Miloš Petrović Singapore 11 360 0.8× 274 1.0× 147 0.6× 43 1.7× 17 0.7× 26 432
Dawei Duan China 12 397 0.9× 284 1.0× 152 0.6× 28 1.1× 12 0.5× 25 427
Zijun Yi China 13 547 1.2× 343 1.2× 277 1.2× 26 1.0× 12 0.5× 19 581
Linxiang Zeng China 12 649 1.4× 442 1.6× 324 1.4× 15 0.6× 12 0.5× 13 716
Ermioni Polydorou Greece 11 379 0.8× 187 0.7× 242 1.0× 24 0.9× 23 1.0× 17 453
Shinya Yakumaru Japan 6 591 1.3× 357 1.3× 273 1.1× 26 1.0× 10 0.4× 7 604
Xianfang Zhou China 13 394 0.8× 250 0.9× 171 0.7× 17 0.7× 9 0.4× 38 429
G.V. Ashok Reddy India 13 240 0.5× 136 0.5× 230 1.0× 49 1.9× 12 0.5× 36 330
Tatsuya Toda Japan 11 286 0.6× 287 1.0× 82 0.3× 33 1.3× 19 0.8× 19 371
Hyungsu Jang South Korea 14 440 0.9× 302 1.1× 188 0.8× 17 0.7× 22 0.9× 25 503

Countries citing papers authored by Motiur Rahman Khan

Since Specialization
Citations

This map shows the geographic impact of Motiur Rahman Khan'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 Motiur Rahman Khan with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Motiur Rahman Khan more than expected).

Fields of papers citing papers by Motiur Rahman Khan

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Motiur Rahman Khan. 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 Motiur Rahman Khan. The network helps show where Motiur Rahman Khan may publish in the future.

Co-authorship network of co-authors of Motiur Rahman Khan

This figure shows the co-authorship network connecting the top 25 collaborators of Motiur Rahman Khan. A scholar is included among the top collaborators of Motiur Rahman Khan 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 Motiur Rahman Khan. Motiur Rahman Khan is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

15 of 15 papers shown
1.
Khan, Motiur Rahman, et al.. (2025). Explicating the phase evolution in As and Se co-doped Ge2Sb2Te5 films for phase change memory. Materials Science in Semiconductor Processing. 201. 110095–110095. 1 indexed citations
2.
Khan, Motiur Rahman, et al.. (2022). Emergence of Deep Traps in Long-Term Thermally Stressed CH3NH3PbI3 Perovskite Revealed by Thermally Stimulated Currents. The Journal of Physical Chemistry Letters. 13(2). 552–558. 5 indexed citations
3.
Farooq, Amjad, Motiur Rahman Khan, Tobias Abzieher, et al.. (2021). Photodegradation of Triple-Cation Perovskite Solar Cells: The Role of Spectrum and Bias Conditions. ACS Applied Energy Materials. 4(4). 3083–3092. 31 indexed citations
4.
Byranvand, Mahdi Malekshahi, Paul Faßl, Motiur Rahman Khan, et al.. (2021). Optimization of SnO2 electron transport layer for efficient planar perovskite solar cells with very low hysteresis. Materials Advances. 3(1). 456–466. 38 indexed citations
5.
Gharibzadeh, Saba, Paul Faßl, Ihteaz M. Hossain, et al.. (2021). Two birds with one stone: dual grain-boundary and interface passivation enables >22% efficient inverted methylammonium-free perovskite solar cells. Energy & Environmental Science. 14(11). 5875–5893. 237 indexed citations breakdown →
6.
Byranvand, Mahdi Malekshahi, Farid Behboodi‐Sadabad, Vanessa Trouillet, et al.. (2020). Chemical vapor deposited polymer layer for efficient passivation of planar perovskite solar cells. Journal of Materials Chemistry A. 8(38). 20122–20132. 34 indexed citations
7.
Haldar, Ritesh, Marius Jakoby, Mariana Kozłowska, et al.. (2020). Tuning Optical Properties by Controlled Aggregation: Electroluminescence Assisted by Thermally‐Activated Delayed Fluorescence from Thin Films of Crystalline Chromophores. Chemistry - A European Journal. 26(71). 17016–17020. 31 indexed citations
8.
Moghadamzadeh, Somayeh, Ihteaz M. Hossain, Marius Jakoby, et al.. (2019). Spontaneous enhancement of the stable power conversion efficiency in perovskite solar cells. Journal of Materials Chemistry A. 8(2). 670–682. 53 indexed citations
9.
Khan, Motiur Rahman, Amardeep Jagtap, K. S. R. Koteswara Rao, & Reghu Menon. (2019). Tuning the charge transport and photo-physical behavior in hybrid poly(3-hexylthiophene) and silver sulfide quantum dot based nanocomposite devices. Organic Electronics. 69. 361–366. 10 indexed citations
10.
Hofmann, Alexander, Simon Züfle, Markus Schmid, et al.. (2019). Dipolar Doping of Organic Semiconductors to Enhance Carrier Injection. Physical Review Applied. 12(6). 24 indexed citations
11.
Khan, Motiur Rahman, K. S. R. Koteswara Rao, & Reghu Menon. (2017). Electric field activated nonlinear and disorder-induced charge transport in doped polymer devices. Organic Electronics. 52. 288–294. 4 indexed citations
12.
Khan, Motiur Rahman, P. Anjaneyulu, K. Srinivasa Rao, & Reghu Menon. (2017). Investigation of disorder and its effect on electrical transport in electrochemically doped polymer devices by current–voltage and impedance spectroscopy. Journal of Physics D Applied Physics. 50(9). 95103–95103. 16 indexed citations
13.
Khan, Motiur Rahman, K. Srinivasa Rao, & Reghu Menon. (2017). Probing of barrier induced deviations in current-voltage characteristics of polymer devices by impedance spectroscopy. AIP conference proceedings. 1832. 120035–120035. 2 indexed citations
14.
Khan, Motiur Rahman, Reghu Menon, & K. Srinivasa Rao. (2016). Doping dependent charge transport in poly(3-methylthiophene) based devices. AIP conference proceedings. 1731. 120014–120014. 4 indexed citations
15.
Khan, Motiur Rahman, Vaibhav Varade, K. S. R. Koteswara Rao, & Reghu Menon. (2015). Injection barrier induced deviations in space charge limited conduction in doped poly(3-methylthiophene) based devices. Journal of Applied Physics. 118(16). 20 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.

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