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D-Index & Metrics

Materials Science

D-Index
42
Citations
11607
World Ranking
12461
National Ranking
2856

Craig J. Fennie 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 Craig J. Fennie sits on this spectrum.

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 publications 1,163+

This scientist: 173 publications — 21st percentile

21% of scientists in this discipline score the same or lower.

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

Craig J. Fennie 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 Craig J. Fennie sits on this spectrum.

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 D-Index 165+

This scientist: 42 D-Index — 3rd percentile

3% of scientists in this discipline score the same or lower.

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

Research.com Recognitions

  • 2015 - Fellow of American Physical Society (APS) Citation For the invention of novel mechanisms enabling dielectric, ferroelectric, and multiferroic functionalities in complex oxides, and identification of materials realizations through first principles methods
  • 2013 - Fellow of the MacArthur Foundation

Overview

Craig J. Fennie is affiliated with Cornell University in the United States and specializes in materials science, with a focus on materials chemistry, electronic, optical, and magnetic materials, and condensed matter physics. Their research spans multiple topics including electronic and structural properties of oxides, 2D materials and applications, machine learning in materials science, quantum dots synthesis and properties, copper-based nanomaterials and applications, ZnO doping and properties, and multiferroics and related materials.

Recent publications by Craig J. Fennie include:

  • Direct Visualization of Trimerized States in 1T'−TaTe2, 2020, Physical Review Letters
  • Site-specific spectroscopic measurement of spin and charge in (LuFeO3)m/(LuFe2O4)1 multiferroic superlattices, 2020, Nature Communications
  • Surface reconstructions and electronic structure of metallic delafossite thin films, 2024, APL Materials
  • Mapping Stacking and Stacking Defects in the 2D Ferromagnet CrI3, 2020, Microscopy and Microanalysis
  • Correction: Optimizing accuracy and efficacy in data-driven materials discovery for the solar production of hydrogen, 2022, Energy & Environmental Science

Frequent co-authors collaborating with Fennie include Nikhil Sivadas, Betül Pamuk, Darrell G. Schlom, David A. Muller, and Ismail El Baggari.

Fennie's work is published in venues such as Physical Review Letters, APL Materials, Nature Communications, Microscopy and Microanalysis, and Energy & Environmental Science.

Recognitions awarded to Craig J. Fennie include being named a Fellow of the American Physical Society (APS) in 2015, with a citation for inventions of novel mechanisms enabling dielectric, ferroelectric, and multiferroic functionalities in complex oxides, and identification of materials realizations through first principles methods. Fennie was also named a Fellow of the MacArthur Foundation in 2013.

Best Publications

  • A strong ferroelectric ferromagnet created by means of spin–lattice coupling

    June Hyuk Lee;June Hyuk Lee;Lei Fang;Eftihia Vlahos;Xianglin Ke

  • Hybrid improper ferroelectricity: a mechanism for controllable polarization-magnetization coupling.

    Nicole A. Benedek;Craig J. Fennie

  • Stacking-dependent magnetism in bilayer CrI3

    Nikhil Sivadas;Satoshi Okamoto;Xiaodong Xu;Craig Fennie

  • Stacking-Dependent Magnetism in Bilayer CrI3

    Nikhil Sivadas;Satoshi Okamoto;Xiaodong Xu;Craig. J. Fennie

  • Why Are There So Few Perovskite Ferroelectrics

    Nicole A. Benedek;Craig J. Fennie

  • Elastic strain engineering of ferroic oxides

    Darrell G. Schlom;Long Qing Chen;Craig J. Fennie;Venkatraman Gopalan

  • Determination of state-of-charge and state-of-health of batteries by fuzzy logic methodology

    Unknown

  • Pressure-controlled interlayer magnetism in atomically thin CrI3.

    Tingxin Li;Shengwei Jiang;Nikhil Sivadas;Zefang Wang

  • Ferroelectric transition in YMnO3 from first principles

    Craig J. Fennie;Karin M. Rabe

  • Magnetic and electric phase control in epitaxial EuTiO(3) from first principles.

    Craig J. Fennie;Karin M. Rabe

  • Octahedral rotation-induced ferroelectricity in cation ordered perovskites.

    James M. Rondinelli;Craig J. Fennie

  • Atomically engineered ferroic layers yield a room-temperature magnetoelectric multiferroic

    Julia A. Mundy;Charles M. Brooks;Megan E. Holtz;Jarrett A. Moyer

  • Polar metals by geometric design

    T. H. Kim;Danilo Puggioni;Y. Yuan;L. Xie;L. Xie

  • Combinatorial discovery of a lead-free morphotropic phase boundary in a thin-film piezoelectric perovskite

    S. Fujino;M. Murakami;A. Varatharajan;S.-H. Lim

  • Turning ABO3 Antiferroelectrics into Ferroelectrics: Design Rules for Practical Rotation‐Driven Ferroelectricity in Double Perovskites and A3B2O7 Ruddlesden‐Popper Compounds

    Andrew T. Mulder;Nicole A. Benedek;James M. Rondinelli;Craig J. Fennie

  • Exploiting dimensionality and defect mitigation to create tunable microwave dielectrics

    Che Hui Lee;Che Hui Lee;Nathan D. Orloff;Nathan D. Orloff;Turan Birol;Ye Zhu

  • Combinatorial discovery of a lead-free morphotropic phase boundary in a thin-film piezoelectric perovskite

    S. Fujino;M. Murakami;V. Anbusathaiah;S.-H. Lim

  • Ferroelectrically induced weak ferromagnetism by design.

    Craig J. Fennie

  • Polar octahedral rotations: A path to new multifunctional materials

    Nicole A. Benedek;Andrew T. Mulder;Craig J. Fennie

  • Bulk magnetoelectricity in the hexagonal manganites and ferrites

    Hena Das;Aleksander L. Wysocki;Yanan Geng;Weida Wu

  • Interplay of spin-orbit interactions, dimensionality, and octahedral rotations in semimetallic SrIrO(3).

    Y. F. Nie;P. D. C. King;C. H. Kim;M. Uchida

  • Band gap and edge engineering via ferroic distortion and anisotropic strain: the case of SrTiO(3).

    Robert F. Berger;Craig J. Fennie;Jeffrey B. Neaton

  • Coexistence of weak ferromagnetism and ferroelectricity in the high pressure LiNbO3-type phase of FeTiO3.

    T. Varga;A. Kumar;E. Vlahos;S. Denev

  • Direct visualization of magnetoelectric domains

    Yanan Geng;Hena Das;Aleksander L. Wysocki;Xueyun Wang

  • Turning ABO$_3$ antiferroelectrics into ferroelectrics: Design rules for practical rotation-driven ferroelectricity in double perovskites and Ruddlesden-Popper compounds

    Andrew T. Mulder;Nicole A. Benedek;James M. Rondinelli;Craig J. Fennie

Frequent Co-Authors

Darrell G. Schlom
Darrell G. Schlom Cornell University
Karin M. Rabe
Karin M. Rabe Rutgers, The State University of New Jersey
David A. Muller
David A. Muller Cornell University
Venkatraman Gopalan
Venkatraman Gopalan Pennsylvania State University
Lena F. Kourkoutis
Lena F. Kourkoutis Cornell University
James M. Rondinelli
James M. Rondinelli Northwestern University
Reinhard Uecker
Reinhard Uecker Leibniz Institute for Crystal Growth
John W. Freeland
John W. Freeland Argonne National Laboratory
Jeffrey B. Neaton
Jeffrey B. Neaton University of California, Berkeley
Xiaoxing Xi
Xiaoxing Xi Temple University

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