World's Best Scientists 2026 revealed!

D-Index & Metrics

Chemistry

D-Index
40
Citations
8989
World Ranking
17834
National Ranking
974

Michael A. Hayward publication distribution in Chemistry in 2026

The chart shows the distribution of publications by all Research.com ranked scientists in the field of Chemistry in 2026. The highlighted bar marks where Michael A. Hayward sits on this spectrum.

61–80 publications: 66 scientists 81–100 publications: 302 scientists 101–120 publications: 623 scientists 121–140 publications: 918 scientists 141–160 publications: 1,218 scientists 161–180 publications: 1,350 scientists 181–200 publications: 1,344 scientists 201–220 publications: 1,281 scientists 221–240 publications: 1,216 scientists 241–260 publications: 1,100 scientists 261–280 publications: 979 scientists 281–300 publications: 939 scientists 301–320 publications: 764 scientists 321–340 publications: 643 scientists 341–360 publications: 628 scientists 361–380 publications: 522 scientists 381–400 publications: 459 scientists 401–420 publications: 397 scientists 421–440 publications: 327 scientists 441–460 publications: 270 scientists 461–480 publications: 265 scientists 481–500 publications: 252 scientists 501–520 publications: 201 scientists 521–540 publications: 185 scientists 541–560 publications: 148 scientists 561–580 publications: 148 scientists 581–600 publications: 132 scientists 601–620 publications: 114 scientists 621–640 publications: 104 scientists 641–660 publications: 91 scientists 661–680 publications: 92 scientists 681–700 publications: 73 scientists 701–720 publications: 57 scientists 721–740 publications: 54 scientists 741–760 publications: 67 scientists 761–780 publications: 45 scientists 781–800 publications: 46 scientists 801–820 publications: 39 scientists 821–840 publications: 32 scientists 841–860 publications: 36 scientists 861–880 publications: 29 scientists 881–900 publications: 26 scientists 901–920 publications: 24 scientists 921–940 publications: 14 scientists 941–960 publications: 23 scientists 961–980 publications: 28 scientists 981–1,000 publications: 15 scientists 1,001–1,020 publications: 29 scientists 1,021–1,040 publications: 12 scientists 1,041–1,060 publications: 19 scientists 1,061–1,080 publications: 12 scientists 1,081–1,100 publications: 6 scientists 1,101–1,120 publications: 8 scientists 1,121–1,140 publications: 12 scientists 1,141–1,160 publications: 5 scientists 1,161–1,180 publications: 6 scientists 1,181–1,200 publications: 14 scientists 1,201–1,220 publications: 7 scientists 1,221–1,240 publications: 2 scientists 1,241–1,260 publications: 6 scientists 1,261–1,280 publications: 4 scientists 1,281–1,294 publications: 6 scientists 1,295+ publications: 100 scientists
61 publications 1,295+

This scientist: 182 publications — 26th percentile

26% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 1,295 publications or more.

Michael A. Hayward D-index placement in Chemistry in 2026

The chart shows the D-index (discipline H-index) distribution of Chemistry scientists ranked by Research.com in 2026. The highlighted bar marks where Michael A. Hayward sits on this spectrum.

40–41 D-Index: 289 scientists 42–43 D-Index: 612 scientists 44–45 D-Index: 808 scientists 46–47 D-Index: 776 scientists 48–49 D-Index: 835 scientists 50–51 D-Index: 861 scientists 52–53 D-Index: 872 scientists 54–55 D-Index: 933 scientists 56–57 D-Index: 1,051 scientists 58–59 D-Index: 930 scientists 60–61 D-Index: 882 scientists 62–63 D-Index: 834 scientists 64–65 D-Index: 731 scientists 66–67 D-Index: 775 scientists 68–69 D-Index: 683 scientists 70–71 D-Index: 646 scientists 72–73 D-Index: 561 scientists 74–75 D-Index: 501 scientists 76–77 D-Index: 437 scientists 78–79 D-Index: 388 scientists 80–81 D-Index: 354 scientists 82–83 D-Index: 292 scientists 84–85 D-Index: 275 scientists 86–87 D-Index: 254 scientists 88–89 D-Index: 235 scientists 90–91 D-Index: 185 scientists 92–93 D-Index: 192 scientists 94–95 D-Index: 155 scientists 96–97 D-Index: 163 scientists 98–99 D-Index: 125 scientists 100–101 D-Index: 105 scientists 102–103 D-Index: 105 scientists 104–105 D-Index: 112 scientists 106–107 D-Index: 88 scientists 108–109 D-Index: 68 scientists 110–111 D-Index: 69 scientists 112–113 D-Index: 65 scientists 114–115 D-Index: 79 scientists 116–117 D-Index: 61 scientists 118–119 D-Index: 44 scientists 120–121 D-Index: 37 scientists 122–123 D-Index: 40 scientists 124–125 D-Index: 33 scientists 126–127 D-Index: 26 scientists 128–129 D-Index: 34 scientists 130–131 D-Index: 35 scientists 132–133 D-Index: 25 scientists 134–135 D-Index: 27 scientists 136–137 D-Index: 17 scientists 138–139 D-Index: 16 scientists 140–141 D-Index: 20 scientists 142–143 D-Index: 20 scientists 144–145 D-Index: 15 scientists 146–147 D-Index: 9 scientists 148–149 D-Index: 9 scientists 150–151 D-Index: 16 scientists 152–153 D-Index: 11 scientists 154–155 D-Index: 9 scientists 156–157 D-Index: 3 scientists 158 D-Index: 3 scientists 159+ D-Index: 98 scientists
40 D-Index 159+

This scientist: 40 D-Index — 1st percentile

1% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 159 D-Index or more.

Overview

Michael A. Hayward is affiliated with the University of Oxford in the United Kingdom and specializes in Materials Science. Their research spans several subfields, including Materials Chemistry, Electronic, Optical and Magnetic Materials, Condensed Matter Physics, Electrical and Electronic Engineering, and Molecular Biology.

The scientist's work focuses on key topics such as Crystallization and Solubility Studies, Advanced Condensed Matter Physics, X-ray Diffraction in Crystallography, Magnetic and Transport Properties of Perovskites and Related Materials, Multiferroics and Related Materials, Ferroelectric and Piezoelectric Materials, and Crystal Structures and Properties.

Michael A. Hayward has published extensively in a variety of scientific outlets. Frequent publication venues include:

  • The Cambridge Structural Database
  • Inorganic Chemistry
  • Chemistry of Materials
  • Dalton Transactions
  • Angewandte Chemie International Edition

Selected recent papers illustrate the scope of their work:

  • "Fluorochemicals from fluorspar via a phosphate-enabled mechanochemical process that bypasses HF" (2023, Science)
  • "Perspectives for next generation lithium-ion battery cathode materials" (2021, APL Materials)
  • "Hybrid Improper Ferroelectricity: A Theoretical, Computational, and Synthetic Perspective" (2022, Annual Review of Materials Research)
  • "A Structurally Characterized Cobalt(I) σ-Alkane Complex" (2020, Angewandte Chemie International Edition)
  • "Tuft cells mediate commensal remodeling of the small intestinal antimicrobial landscape" (2023, Proceedings of the National Academy of Sciences)

Collaboration plays a significant role in Michael A. Hayward's research. Frequent co-authors include Alexandra S. Gibbs, Nicole A. Benedek, Tong Zhu, Nita H. Salzman, and Stuart A. Macgregor. These collaborations reflect a multidisciplinary approach to materials science and chemistry.

Best Publications

  • Strongly linked current flow in polycrystalline forms of the superconductor MgB2.

    D. C. Larbalestier;L. D. Cooley;M. O. Rikel;A. A. Polyanskii

  • Strongly linked current flow in polycrystalline forms of the new superconductor MgB2

    D.C. Larbalestier;M.O. Rikel;L.D. Cooley;A.A. Polyanskii

  • Superconductivity in the non-oxide perovskite MgCNi3.

    T. He;Q. Huang;Q. Huang;A. P. Ramirez;Y. Wang

  • High critical current density and enhanced irreversibility field in superconducting MgB2 thin films

    Cb B. Eom;Mk K. Lee;Jh H. Choi;Lj J. Belenky

  • Thin Film Magnesium Boride Superconductor with Very High Critical Current Density and Enhanced Irreversibility Field

    C.B. Eom;M.K. Lee;J.H. Choi;L. Belenky

  • Loss of superconductivity with the addition of Al to MgB2 and a structural transition in Mg1-x AlxB2.

    J. S. Slusky;N. Rogado;K. A. Regan;M. A. Hayward

  • Giant Anharmonicity and Nonlinear Electron-Phonon Coupling in MgB 2 : A Combined First-Principles Calculation and Neutron Scattering Study

    T. Yildirim;O. Gülseren;O. Gülseren;J. W. Lynn;C. M. Brown;C. M. Brown

  • Sodium Hydride as a Powerful Reducing Agent for Topotactic Oxide Deintercalation: Synthesis and Characterization of the Nickel(I) Oxide LaNiO2

    M. A. Hayward;M. A. Green;M. J. Rosseinsky;J. Sloan

  • The Hydride Anion in an Extended Transition Metal Oxide Array: LaSrCoO3H0.7

    M. A. Hayward;E. J. Cussen;J. B. Claridge;M. Bieringer

  • A spectrophotometric method for the direct detection and quantitation of nitric oxide, nitrite, and nitrate in cell culture media.

    Lisa A. Ridnour;Julia E. Sim;Michael A. Hayward;David A. Wink

  • Synthesis of the infinite layer Ni(I) phase NdNiO2+x by low temperature reduction of NdNiO3 with sodium hydride

    M.A. Hayward;M.J. Rosseinsky

  • Dielectric anomalies and spiral magnetic order in CoCr 2 O 4

    G. Lawes;B. Melot;K. Page;C. Ederer

  • Pressure dependence of the superconducting transition temperature of magnesium diboride.

    M. Monteverde;M. Núñez-Regueiro;N. Rogado;K. A. Regan

  • BaMnO3- x revisited : A structural and magnetic study

    Josephine J. Adkin and;Michael A. Hayward

  • Anion Vacancy Distribution and Magnetism in the New Reduced Layered Co(II)/Co(I) Phase LaSrCoO3.5-x

    M. A. Hayward;M. J. Rosseinsky

  • Strontium Vanadium Oxide–Hydrides: “Square-Planar” Two-Electron Phases†

    Fabio Denis Romero;Alice Leach;Johannes S. Möller;Francesca Foronda

  • S-alkyl-L-thiocitrullines. Potent stereoselective inhibitors of nitric oxide synthase with strong pressor activity in vivo

    Krishnaswamy Narayanan;Larry Spack;Kirk McMillan;Robert G. Kilbourn

  • Synthesis and Structural Characterization of La1−xAxMnO2.5 (A = Ba, Sr, Ca) Phases: Mapping the Variants of the Brownmillerite Structure

    Thomas G. Parsons;Hans D’Hondt;Joke Hadermann;Michael A. Hayward

  • 13)C NMR investigation of the superconductor MgCNi(3) up to 800 K.

    P. M. Singer;T. Imai;T. He;M. A. Hayward

  • Fluorochemicals from fluorspar via a phosphate-enabled mechanochemical process that bypasses HF

    Unknown

  • Topotactic reduction of YBaCo2O5 and LaBaCo2O5: square-planar Co(I) in an extended oxide.

    James Seddon;Emmanuelle Suard;Michael A. Hayward

  • Perspectives for next generation lithium-ion battery cathode materials

    Samuel G. Booth;Alisyn J. Nedoma;Nirmalesh N. Anthonisamy;Peter J. Baker

Frequent Co-Authors

P. Shiv Halasyamani
P. Shiv Halasyamani University of Houston
Robert Joseph Cava
Robert Joseph Cava Princeton University
Joke Hadermann
Joke Hadermann University of Antwerp
Kun Luo
Kun Luo Zhejiang University
Andrew L. Goodwin
Andrew L. Goodwin University of Oxford
Matthew G. Tucker
Matthew G. Tucker Oak Ridge National Laboratory
Matthew J. Rosseinsky
Matthew J. Rosseinsky University of Liverpool
John E. McGrady
John E. McGrady University of Oxford
David A. Keen
David A. Keen Rutherford Appleton Laboratory
Henny W. Zandbergen
Henny W. Zandbergen Delft University of Technology

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