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D-Index & Metrics

Discipline name D-Index World Ranking Current World Ranking National Ranking Current National Ranking Publications Citations
Materials Science 51 9736 9399 56 56 117 15375

Pierre M. Beaujuge publications per year

The chart shows the history of publications by Pierre M. Beaujuge between 2008 and 2024, highlighting the no. of papers published in each year and offering an overview of the publication velocity of this scholar. Pierre M. Beaujuge published across 17 years, from 2008 to 2024, averaging 7 papers a year. Output peaked at 16 publications in 2018. 1 of the 119 publications appeared in the last two years.

No. of publications
5 10 15
Bar chart. Horizontal axis: year, 2008 to 2024. Vertical axis: number of publications, 0 to 16. Peak 16 publications in 2018. 2008: 5 publications 2009: 5 publications 2010: 13 publications 2011: 4 publications 2012: 3 publications 2013: 5 publications 2014: 14 publications 2015: 12 publications 2016: 14 publications 2017: 6 publications 2018: 16 publications 2019: 9 publications 2020: 4 publications 2021: 8 publications 2022: 0 publications 2023: 0 publications 2024: 1 publication
2008 2024

119 publications in total across all disciplines

View publications per year as a table
Pierre M. Beaujuge: publications per year, 2008 to 2024
Year Publications
2008 5
2009 5
2010 13
2011 4
2012 3
2013 5
2014 14
2015 12
2016 14
2017 6
2018 16
2019 9
2020 4
2021 8
2022 0
2023 0
2024 1
Total 119
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Pierre M. Beaujuge publication distribution in Materials Science in 2026

The chart shows the distribution of publications by all Research.com ranked scientists in the field of Materials Science in 2026. The highlighted bar marks where Pierre M. Beaujuge sits on this spectrum.

No. of scientists
200 400 600 800
Bar chart with 57 bars. Horizontal axis: publications, 50–69 to 1,163+. Vertical axis: number of scientists, 0 to 891. Most scientists, 891, have 190–209 publications. The last bar groups every scientist with 1,163 publications or more. The highlighted bar, 110–129 publications, is where this scientist sits. 50–69 publications: 28 scientists 70–89 publications: 152 scientists 90–109 publications: 356 scientists 110–129 publications: 487 scientists 130–149 publications: 723 scientists 150–169 publications: 835 scientists 170–189 publications: 850 scientists 190–209 publications: 891 scientists 210–229 publications: 862 scientists 230–249 publications: 766 scientists 250–269 publications: 726 scientists 270–289 publications: 665 scientists 290–309 publications: 593 scientists 310–329 publications: 537 scientists 330–349 publications: 477 scientists 350–369 publications: 440 scientists 370–389 publications: 356 scientists 390–409 publications: 321 scientists 410–429 publications: 256 scientists 430–449 publications: 246 scientists 450–469 publications: 216 scientists 470–489 publications: 212 scientists 490–509 publications: 174 scientists 510–529 publications: 194 scientists 530–549 publications: 162 scientists 550–569 publications: 131 scientists 570–589 publications: 111 scientists 590–609 publications: 103 scientists 610–629 publications: 99 scientists 630–649 publications: 77 scientists 650–669 publications: 92 scientists 670–689 publications: 56 scientists 690–709 publications: 53 scientists 710–729 publications: 53 scientists 730–749 publications: 38 scientists 750–769 publications: 52 scientists 770–789 publications: 43 scientists 790–809 publications: 38 scientists 810–829 publications: 34 scientists 830–849 publications: 25 scientists 850–869 publications: 18 scientists 870–889 publications: 20 scientists 890–909 publications: 24 scientists 910–929 publications: 27 scientists 930–949 publications: 20 scientists 950–969 publications: 17 scientists 970–989 publications: 10 scientists 990–1,009 publications: 16 scientists 1,010–1,029 publications: 13 scientists 1,030–1,049 publications: 12 scientists 1,050–1,069 publications: 9 scientists 1,070–1,089 publications: 8 scientists 1,090–1,109 publications: 7 scientists 1,110–1,129 publications: 9 scientists 1,130–1,149 publications: 2 scientists 1,150–1,162 publications: 5 scientists 1,163+ publications: 100 scientists
50–69 publications 1,163+

This scientist: 117 publications — 6th percentile

6% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 1,163 publications or more.

View publications distribution as a table
Number of Materials Science scientists by publication count, Research.com 2026 ranking edition. Based on 12,847 ranked scientists.
Publications Scientists This scientist
50–69 28
70–89 152
90–109 356
110–129 487 117
130–149 723
150–169 835
170–189 850
190–209 891
210–229 862
230–249 766
250–269 726
270–289 665
290–309 593
310–329 537
330–349 477
350–369 440
370–389 356
390–409 321
410–429 256
430–449 246
450–469 216
470–489 212
490–509 174
510–529 194
530–549 162
550–569 131
570–589 111
590–609 103
610–629 99
630–649 77
650–669 92
670–689 56
690–709 53
710–729 53
730–749 38
750–769 52
770–789 43
790–809 38
810–829 34
830–849 25
850–869 18
870–889 20
890–909 24
910–929 27
930–949 20
950–969 17
970–989 10
990–1,009 16
1,010–1,029 13
1,030–1,049 12
1,050–1,069 9
1,070–1,089 8
1,090–1,109 7
1,110–1,129 9
1,130–1,149 2
1,150–1,162 5
1,163+ 100
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Pierre M. Beaujuge D-index placement in Materials Science in 2026

The chart shows the D-index (discipline H-index) distribution of Materials Science scientists ranked by Research.com in 2026. The highlighted bar marks where Pierre M. Beaujuge sits on this spectrum.

No. of scientists
200 400 600
Bar chart with 64 bars. Horizontal axis: D-Index, 40–41 to 165+. Vertical axis: number of scientists, 0 to 667. Most scientists, 667, have 52–53 D-Index. The last bar groups every scientist with 165 D-Index or more. The highlighted bar, 50–51 D-Index, is where this scientist sits. 40–41 D-Index: 211 scientists 42–43 D-Index: 450 scientists 44–45 D-Index: 612 scientists 46–47 D-Index: 612 scientists 48–49 D-Index: 598 scientists 50–51 D-Index: 657 scientists 52–53 D-Index: 667 scientists 54–55 D-Index: 621 scientists 56–57 D-Index: 597 scientists 58–59 D-Index: 610 scientists 60–61 D-Index: 587 scientists 62–63 D-Index: 606 scientists 64–65 D-Index: 533 scientists 66–67 D-Index: 490 scientists 68–69 D-Index: 469 scientists 70–71 D-Index: 378 scientists 72–73 D-Index: 421 scientists 74–75 D-Index: 359 scientists 76–77 D-Index: 323 scientists 78–79 D-Index: 299 scientists 80–81 D-Index: 230 scientists 82–83 D-Index: 210 scientists 84–85 D-Index: 195 scientists 86–87 D-Index: 203 scientists 88–89 D-Index: 175 scientists 90–91 D-Index: 175 scientists 92–93 D-Index: 142 scientists 94–95 D-Index: 121 scientists 96–97 D-Index: 117 scientists 98–99 D-Index: 107 scientists 100–101 D-Index: 88 scientists 102–103 D-Index: 85 scientists 104–105 D-Index: 68 scientists 106–107 D-Index: 62 scientists 108–109 D-Index: 57 scientists 110–111 D-Index: 45 scientists 112–113 D-Index: 49 scientists 114–115 D-Index: 50 scientists 116–117 D-Index: 34 scientists 118–119 D-Index: 38 scientists 120–121 D-Index: 37 scientists 122–123 D-Index: 29 scientists 124–125 D-Index: 28 scientists 126–127 D-Index: 24 scientists 128–129 D-Index: 33 scientists 130–131 D-Index: 28 scientists 132–133 D-Index: 21 scientists 134–135 D-Index: 20 scientists 136–137 D-Index: 23 scientists 138–139 D-Index: 17 scientists 140–141 D-Index: 12 scientists 142–143 D-Index: 17 scientists 144–145 D-Index: 21 scientists 146–147 D-Index: 13 scientists 148–149 D-Index: 11 scientists 150–151 D-Index: 14 scientists 152–153 D-Index: 13 scientists 154–155 D-Index: 9 scientists 156–157 D-Index: 10 scientists 158–159 D-Index: 7 scientists 160–161 D-Index: 4 scientists 162–163 D-Index: 4 scientists 164 D-Index: 3 scientists 165+ D-Index: 98 scientists
40–41 D-Index 165+

This scientist: 51 D-Index — 24th percentile

24% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 165 D-Index or more.

View D-Index distribution as a table
Number of Materials Science scientists by D-index, Research.com 2026 ranking edition. Based on 12,847 ranked scientists.
D-Index Scientists This scientist
40–41 211
42–43 450
44–45 612
46–47 612
48–49 598
50–51 657 51
52–53 667
54–55 621
56–57 597
58–59 610
60–61 587
62–63 606
64–65 533
66–67 490
68–69 469
70–71 378
72–73 421
74–75 359
76–77 323
78–79 299
80–81 230
82–83 210
84–85 195
86–87 203
88–89 175
90–91 175
92–93 142
94–95 121
96–97 117
98–99 107
100–101 88
102–103 85
104–105 68
106–107 62
108–109 57
110–111 45
112–113 49
114–115 50
116–117 34
118–119 38
120–121 37
122–123 29
124–125 28
126–127 24
128–129 33
130–131 28
132–133 21
134–135 20
136–137 23
138–139 17
140–141 12
142–143 17
144–145 21
146–147 13
148–149 11
150–151 14
152–153 13
154–155 9
156–157 10
158–159 7
160–161 4
162–163 4
164 3
165+ 98
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Overview

Pierre M. Beaujuge is affiliated with the King Abdullah University of Science and Technology in Saudi Arabia. Their research spans several domains within engineering, with a particular focus on electrical and electronic engineering. The work also intersects with polymers and plastics, materials chemistry, atomic and molecular physics, optics, and computational mechanics, reflecting a multidisciplinary approach.

Their studies prominently engage with topics related to organic electronics and photovoltaics, conducting polymers and their applications, perovskite materials, semiconductor materials and interfaces, block copolymer self-assembly, thin-film transistor technologies, and fluid dynamics in thin films.

Recent notable publications include:

  • Intrinsic efficiency limits in low-bandgap non-fullerene acceptor organic solar cells, 2020, Nature Materials
  • Predictive modelling of structure formation in semiconductor films produced by meniscus-guided coating, 2020, Nature Materials
  • GIWAXS-SIIRkit: scattering intensity, indexing and refraction calculation toolkit for grazing-incidence wide-angle X-ray scattering of organic materials, 2020, Journal of Applied Crystallography
  • Thienyl Sidechain Substitution and Backbone Fluorination of Benzodithiophene-Based Donor Polymers Concertedly Minimize Carrier Losses in ITIC-Based Organic Solar Cells, 2020, The Journal of Physical Chemistry C
  • Quantification of Photophysical Processes in All-Polymer Bulk Heterojunction Solar Cells, 2020, Solar RRL

Frequent collaborators in their work include Jasper J. Michels, Philipp Wucher, Wojciech Pisula, Tomasz Marszałek, and Frédéric Laquai, highlighting a consistent network of co-authorship.

Predominant venues for their research dissemination are:

  • Nature Materials
  • Advanced Electronic Materials
  • Journal of Applied Crystallography
  • The Journal of Physical Chemistry C
  • Solar RRL

Best Publications

  • Color Control in π-Conjugated Organic Polymers for Use in Electrochromic Devices

    Pierre M. Beaujuge;John R. Reynolds

  • Molecular design and ordering effects in π-functional materials for transistor and solar cell applications.

    Pierre M. Beaujuge;Jean M. J. Fréchet

  • Synthetic Control of Structural Order in N-Alkylthieno[3,4-c]pyrrole-4,6-dione-Based Polymers for Efficient Solar Cells

    Claudia Piliego;Thomas W. Holcombe;Jessica D. Douglas;Claire H. Woo

  • Linear side chains in benzo[1,2-b:4,5-b']dithiophene-thieno[3,4-c]pyrrole-4,6-dione polymers direct self-assembly and solar cell performance.

    Clément Cabanetos;Abdulrahman El Labban;Jonathan A. Bartelt;Jessica D. Douglas

  • Spectral engineering in π-conjugated polymers with intramolecular donor-acceptor interactions.

    Pierre M. Beaujuge;Chad M. Amb;John R. Reynolds

  • The donor-acceptor approach allows a black-to-transmissive switching polymeric electrochrome.

    P. M. Beaujuge;S. Ellinger;J. R. Reynolds

  • Side-chain tunability of furan-containing low-band-gap polymers provides control of structural order in efficient solar cells.

    Alan T. Yiu;Pierre M. Beaujuge;Pierre M. Beaujuge;Olivia P. Lee;Claire H. Woo

  • Incorporation of furan into low band-gap polymers for efficient solar cells.

    Claire H. Woo;Pierre M. Beaujuge;Thomas W. Holcombe;Olivia P. Lee

  • Efficient Small Molecule Bulk Heterojunction Solar Cells with High Fill Factors via Pyrene-Directed Molecular Self-Assembly

    Olivia P. Lee;Alan T. Yiu;Alan T. Yiu;Pierre M. Beaujuge;Pierre M. Beaujuge;Pierre M. Beaujuge;Claire H. Woo;Claire H. Woo

  • Intrinsic efficiency limits in low-bandgap non-fullerene acceptor organic solar cells

    Safakath Karuthedath;Julien Gorenflot;Yuliar Firdaus;Neha Chaturvedi

  • Importance of the Donor:Fullerene Intermolecular Arrangement for High-Efficiency Organic Photovoltaics

    Kenneth Graham;Kenneth Graham;Clement Cabanetos;Justin P. Jahnke;Matthew N. Idso

  • Tailoring structure-property relationships in dithienosilole-benzothiadiazole donor-acceptor copolymers.

    Pierre M. Beaujuge;Wojciech Pisula;Hoi Nok Tsao;Stefan Ellinger

  • Two-dimensional heterostructures of V2O5 and reduced graphene oxide as electrodes for high energy density asymmetric supercapacitors

    Doddahalli H. Nagaraju;Qingxiao Wang;Pierre Beaujuge;Husam N. Alshareef

  • Controlling Solution‐Phase Polymer Aggregation with Molecular Weight and Solvent Additives to Optimize Polymer‐Fullerene Bulk Heterojunction Solar Cells

    Jonathan A. Bartelt;Jessica D. Douglas;William R. Mateker;Abdulrahman El Labban

  • Enhanced solid-state order and field-effect hole mobility through control of nanoscale polymer aggregation

    Mark S. Chen;Olivia P. Lee;Jeremy R. Niskala;Alan T. Yiu

  • Spray Processable Green to Highly Transmissive Electrochromics via Chemically Polymerizable Donor–Acceptor Heterocyclic Pentamers

    Pierre M. Beaujuge;Stefan Ellinger;John R. Reynolds

  • Asymmetric supercapacitors with metal-like ternary selenides and porous graphene electrodes

    Chuan Xia;Qiu Jiang;Chao Zhao;Pierre M. Beaujuge

  • A mechanistic understanding of processing additive-induced efficiency enhancement in bulk heterojunction organic solar cells.

    Kristin Schmidt;Christopher J. Tassone;Jeremy R. Niskala;Jeremy R. Niskala;Alan T. Yiu;Alan T. Yiu

  • Spray-Processable Blue-to-Highly Transmissive Switching Polymer Electrochromes via the Donor–Acceptor Approach

    Chad M. Amb;Pierre M. Beaujuge;John R. Reynolds

  • Polymer Solar Cells with Efficiency >10% Enabled via a Facile Solution‐Processed Al‐Doped ZnO Electron Transporting Layer

    Lethy Krishnan Jagadamma;Mohammed Al-Senani;Abdulrahman El-Labban;Issam Gereige

  • Key Parameters Requirements for Non‐Fullerene‐Based Organic Solar Cells with Power Conversion Efficiency >20%

    Yuliar Firdaus;Vincent M. Le Corre;Jafar I. Khan;Zhipeng Kan

Frequent Co-Authors

John R. Reynolds
John R. Reynolds Georgia Institute of Technology
Frédéric Laquai
Frédéric Laquai King Abdullah University of Science and Technology
Michael F. Toney
Michael F. Toney University of Colorado Boulder
Jean M. J. Fréchet
Jean M. J. Fréchet University of California, Berkeley
Aram Amassian
Aram Amassian North Carolina State University
Wojciech Pisula
Wojciech Pisula Max Planck Society
Michael D. McGehee
Michael D. McGehee University of Colorado Boulder
Franky So
Franky So North Carolina State University
Thomas D. Anthopoulos
Thomas D. Anthopoulos University of Manchester
Husam N. Alshareef
Husam N. Alshareef King Abdullah University of Science and Technology

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