World's Best Scientists 2026 revealed!

D-Index & Metrics

Chemistry

D-Index
60
Citations
11454
World Ranking
9812
National Ranking
353

Jean-Pierre Tuchagues 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 Jean-Pierre Tuchagues 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: 262 publications — 53rd percentile

53% of scientists in this discipline score the same or lower.

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

Jean-Pierre Tuchagues 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 Jean-Pierre Tuchagues 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: 60 D-Index — 47th percentile

47% of scientists in this discipline score the same or lower.

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

Overview

Jean-Pierre Tuchagues is affiliated with the Centre national de la recherche scientifique (CNRS) in France. Their research profile and scientific contributions mainly revolve around the affiliation with this prominent French research institution.

Details about recent publications, frequent co-authors, and main topics of study are not provided at this time. Likewise, there is no available information on specific fields, subfields, or publication venues associated with their work.

There are no records of book publications or awards linked to this scientist.

Based on the available data, the profile of Jean-Pierre Tuchagues is primarily defined by their professional role within CNRS, without further elaboration on research specialties or output.

Best Publications

  • CONVENIENT METHOD FOR THE ORTHO-FORMYLATION OF PHENOLS

    Nini U. Hofsløkken;Lars Skattebøl;Fredrik Johansson;Sophie K. Bertilsson

  • Two-Step Spin Conversion for the Three-Dimensional Compound Tris(4,4'-bis-1,2,4-triazole)iron(II) Diperchlorate

    Yann Garcia;Olivier Kahn;Louis Rabardel;Benoit Chansou

  • Face-Sharing Heterotrinuclear MII−LnIII−MII (M = Mn, Fe, Co, Zn; Ln = La, Gd, Tb, Dy) Complexes: Synthesis, Structures, and Magnetic Properties

    Tomoka Yamaguchi;Jean Pierre Costes;Yukana Kishima;Masaaki Kojima

  • Two-step spin conversion of [FeII(5-NO2-sal-N(1,4,7,10))]: 292, 153, and 103 K x-ray crystal and molecular structure, infrared, magnetic, Moessbauer, calorimetric, and theoretical studies

    Didier Boinnard;Azzedine Bousseksou;Ary Dworkin;Jean Michel Savariault

  • A Nonanuclear Iron(II) Single‐Molecule Magnet

    Athanassios K. Boudalis;Bruno Donnadieu;Vassilios Nastopoulos;Juan Modesto Clemente-Juan

  • A Variety of Spin‐Crossover Behaviors Depending on the Counter Anion: Two‐Dimensional Complexes Constructed by NH⋅⋅⋅Cl− Hydrogen Bonds, [FeIIH3LMe]Cl⋅X (X = PF6−, AsF6−, SbF6−, CF3SO3−; H3LMe = Tris[2‐{[(2‐methylimidazol‐4‐yl)methylidene]amino}ethyl]amine)

    Masahiro Yamada;Hiroaki Hagiwara;Haruna Torigoe;Naohide Matsumoto

  • Synthesis, Structure, and Magnetic Properties of the Low-Symmetry Tetranuclear Cubane-like Nickel Complex [Ni4(pypentO)(pym)(μ3-OH)2(μ-Oac)2(NCS)2(OH2)]

    Juan M. Clemente-Juan;Benoît Chansou;Bruno Donnadieu;Jean-Pierre Tuchagues

  • Synthesis, Structure, and Magnetic Properties of Mn(salpn)N3, a Helical Polymer, and Fe(salpn)N3, a Ferromagnetically Coupled Dimer (salpnH2 = N,N‘-bis(Salicylidene)-1,3-diaminopropane)

    K. Rajender Reddy;M. V. Rajasekharan;J.-P. Tuchagues

  • An unprecedented homochiral mixed-valence spin-crossover compound.

    Yukinari Sunatsuki;Yuichi Ikuta;Naohide Matsumoto;Hiromi Ohta

  • Supramolecular spin-crossover iron complexes based on imidazole-imidazolate hydrogen bonds

    Yukinari Sunatsuki;Hiromi Ohta;Masaaki Kojima;Yuichi Ikuta

  • Synthesis, Structural, Magnetic, and Redox Properties of Asymmetric Diiron Complexes with a Single Terminally Bound Phenolate Ligand. Relevance to the Purple Acid Phosphatase Enzymes

    Elisabeth Lambert;Barbara Chabut;Sylvie Chardon-Noblat;Alain Deronzier

  • A new family of spin crossover complexes with a tripod ligand containing three imidazoles: synthesis, characterization, and magnetic properties of [FeIIH3LMe](NO3)2.1.5H2O, [FeIIILMe].3.5H2O, [FeIIH3LMe][FeIILMe]NO3, and [FeIIH3LMe][FeIIILMe](NO3)2 (H3LMe) = Tris[2-(((2-methylimidazol-4-yl)methylidene)amino)ethyl]amine).

    Yuichi Ikuta;Makoto Ooidemizu;Yuichi Yamahata;Masahiro Yamada

  • Raman spectroscopy of the high- and low-spin states of the spin crossover complex Fe(phen) 2 (NCS) 2 : an initial approach to estimation of vibrational contributions to the associated entropy change

    Azzedine Bousseksou;Azzedine Bousseksou;John J McGarvey;Francois Varret;José Antonio Real

  • Interlayer interaction of two-dimensional layered spin crossover complexes [FeIIH3LMe][FeIILMe]X (X- = ClO4-, BF4-, PF6-, AsF6-, and SbF6-; H3LMe = tris[2-(((2-methylimidazol-4-yl)methylidene)amino)ethyl]amine)

    Masahiro Yamada;Makoto Ooidemizu;Yuichi Ikuta;Shutaro Osa

  • Manganese(II) complexes of polydentate Schiff bases. 1. Synthesis, characterization, magnetic properties, and molecular structure

    Bouchra Mabad;Patrick Cassoux;Jean Pierre Tuchagues;David N. Hendrickson

  • Calixarene-Based Copper(I) Complexes as Models for Monocopper Sites in Enzymes.

    Sébastien Blanchard;Loïc Le Clainche;Marie-Noëlle Rager;Benoît Chansou

  • pH-Dependent Monomer Oligomer Interconversion of Copper(II) Complexes with N-(2-R-imidazol-4-ylmethylidene)-2-aminoethylpyridine (R = Methyl, Phenyl).

    Naohide Matsumoto;Yuri Motoda;Toshihiro Matsuo;Toshio Nakashima

  • Synthesis, structure, and magnetic properties of heterometallic dicyanamide-bridged Cu-Na and Cu-Gd one-dimensional polymers.

    Jean-Pierre Costes;Ghenadie Novitchi;Sergiu Shova;Françoise Dahan

  • The Effect of Hydrogen Bonding on the Structures of Uracil and Some Methyl Derivatives Studied by Experiment and Theory.

    Gustavo Portalone;Luigi Bencivenni;Marcello Colapietro;Andrea Pieretti

  • Molecular crystal structure and magnetic properties of (croconato)- and (oxalato)manganese(II) complexes

    Diane Deguenon;Gerald Bernardinelli;Jean Pierre Tuchagues;Paule Castan

Frequent Co-Authors

Jean-Pierre Costes
Jean-Pierre Costes Federal University of Toulouse Midi-Pyrénées
Françoise Dahan
Françoise Dahan Centre national de la recherche scientifique, CNRS
Azzedine Bousseksou
Azzedine Bousseksou Federal University of Toulouse Midi-Pyrénées
François Varret
François Varret Centre national de la recherche scientifique, CNRS
Laure Vendier
Laure Vendier Federal University of Toulouse Midi-Pyrénées
Carine Duhayon
Carine Duhayon Federal University of Toulouse Midi-Pyrénées
Bruno Donnadieu
Bruno Donnadieu University of California, Riverside
Yiannis Sanakis
Yiannis Sanakis Demokritos National Centre for Scientific Research
Lionel Salmon
Lionel Salmon Federal University of Toulouse Midi-Pyrénées
Harri Lönnberg
Harri Lönnberg University of Turku

If you think any of the details on this page are incorrect, let us know.

Report an issue

We appreciate your kind effort to assist us to improve this page, it would be helpful providing us with as much detail as possible in the text box below:

Related Online Degrees & Career Pathways

Studying Chemistry in the USA opens diverse career pathways, especially in the field of forensic science. Many students interested in applying chemical principles to criminal investigations explore options such as a forensic science bachelor degree online. This degree provides foundational knowledge in laboratory techniques, chemical analysis, and legal procedures, all essential for careers in forensics.

For those seeking advanced expertise, pursuing an online forensic psychology masters can complement a chemistry background by focusing on the psychological aspects of criminal behavior. This interdisciplinary approach expands opportunities beyond the lab into criminal profiling and victim support roles.

Entry-level positions like becoming an autopsy technician also benefit from chemistry knowledge, particularly in understanding tissue analysis and toxicology. This career path involves assisting medical examiners and requires a strong attention to detail and scientific accuracy.

Overall, exploring careers in forensics reveals a wide range of opportunities that blend chemistry with criminal justice. These roles are vital in solving crimes, ensuring public safety, and advancing the justice system.

Best Scientists Citing Jean-Pierre Tuchagues

Recently Published Articles