World's Best Scientists 2026 revealed!
Mendeleev Communications
H-index 13

Mendeleev Communications

Ranking & Metrics

Discipline name Position Best Scientists Publications D-Index
Chemistry 575 71 198 13

Additional Metrics

Number of Best Scientists*: 99
Documents by Best Scientists*: 236
Top 100 Ranked Scientists*: 3
SCIMAGO H-index: 46
SCIMAGO SJR: 0.305
Impact Factor: 1.7

Overview

Top Research Topics at Mendeleev Communications?

The journal facilitates discussions on Organic chemistry, Medicinal chemistry, Stereochemistry, Inorganic chemistry and Polymer chemistry. Catalysis and Yield (chemistry) are among the areas of Organic chemistry tackled. Medicinal chemistry research discussed connects with the study of Ring (chemistry).

The study on Stereochemistry presented is investigated in conjunction with research in Crystallography. It connects the study in Crystallography with the closely related area of Molecule. While work presented in Mendeleev Communications provided substantial information on Inorganic chemistry, it also covered topics in Ion and Aqueous solution.

  • Organic chemistry (24.74%)
  • Medicinal chemistry (18.63%)
  • Stereochemistry (12.46%)

What are the most cited papers published in the journal?

  • Clathrate hydrates of hydrogen and neon (191 citations)
  • Recent advances in ring-forming reactions of donor–acceptor cyclopropanes (187 citations)
  • Organic and hybrid molecular systems (158 citations)

Research areas of the most cited articles at Mendeleev Communications:

The published papers cover a variety of subjects, including Organic chemistry, Medicinal chemistry, Stereochemistry, Catalysis and Inorganic chemistry. The journal articles focus on Organic chemistry as well as the interrelated topics of Polymer chemistry. The study on Medicinal chemistry presented in the most cited papers is investigated in conjunction with research in Yield (chemistry).

What topics the last edition of the journal is best known for?

  • Organic chemistry
  • Catalysis
  • Enzyme

The previous edition focused in particular on these issues:

The journal is mainly concerned with subjects like Medicinal chemistry, Photochemistry, Combinatorial chemistry, Molecule and Catalysis. Medicinal chemistry research featured in it incorporates concerns from various other topics such as Moiety, Ligand, Deprotonation and Alkyl. The in-depth study on Ligand also explores topics in the intersecting field of Carbene.

The work on Photochemistry tackled in it brings together disciplines like Absorption (chemistry), Radical ion and Irradiation. Research on Molecule addressed in the journal frequently intersections with the field of Polymer chemistry.

The most cited articles from the last journal are:

  • Halogen vs. ionic bonding: an unusual isomorphism between the neutral (C5Me5)2Fe/C2I2 cocrystal and ionic [(C5Me5)2Fe]Br3 crystal (7 citations)
  • New thieno[2,3-b]pyridine-fused [1,2,4]triazolo[4,3-a]pyrimidinone hybrids as potential MRSA and VRE inhibitors (5 citations)
  • Synthesis of catalytically active diene and cyclopentadienyl rhodium halide complexes (5 citations)

Papers citation over time

A key indicator for each journal is its effectiveness in reaching other researchers with the papers published at that venue.

The chart below presents the interquartile range (first quartile 25%, median 50% and third quartile 75%) of the number of citations of articles over time.

The top authors publishing in Mendeleev Communications (based on the number of publications) are:

  • Konstantin A. Lyssenko (127 papers) published 1 paper at the last edition, 3 less than at the previous edition,
  • Remir G. Kostyanovsky (90 papers) absent at the last edition,
  • Nina N. Makhova (73 papers) published 1 paper at the last edition,
  • Mikhail Yu. Antipin (57 papers) absent at the last edition,
  • Nikolai M. Rubtsov (55 papers) published 3 papers at the last edition the same number as at the previous edition.

The overall trend for top authors publishing in this journal is outlined below. The chart shows the number of publications at each edition of the journal for top authors.

Only papers with recognized affiliations are considered

The top affiliations publishing in Mendeleev Communications (based on the number of publications) are:

  • Russian Academy of Sciences (2681 papers) published 105 papers at the last edition, 66 less than at the previous edition,
  • Moscow State University (815 papers) published 49 papers at the last edition, 30 less than at the previous edition,
  • A. N. Nesmeyanov Institute of Organoelement Compounds (575 papers) published 21 papers at the last edition, 1 less than at the previous edition,
  • Semenov Institute of Chemical Physics (157 papers) published 2 papers at the last edition, 1 less than at the previous edition,
  • Southern Federal University (126 papers) published 7 papers at the last edition, 2 more than at the previous edition.

The overall trend for top affiliations publishing in this journal is outlined below. The chart shows the number of publications at each edition of the journal for top affiliations.

Publication chance based on affiliation

The publication chance index shows the ratio of articles published by the best research institutions in the journal edition to all articles published within that journal. The best research institutions were selected based on the largest number of articles published during all editions of the journal.

The chart below presents the percentage ratio of articles from top institutions (based on their ranking of total papers).Top affiliations were grouped by their rank into the following tiers: top 1-10, top 11-20, top 21-50, and top 51+. Only articles with a recognized affiliation are considered.

During the most recent 2021 edition, 6.74% of publications had an unrecognized affiliation. Out of the publications with recognized affiliations, 85.54% were posted by at least one author from the top 10 institutions publishing in the journal. Another 2.41% included authors affiliated with research institutions from the top 11-20 affiliations. Institutions from the 21-50 range included 2.41% of all publications and 9.64% were from other institutions.

Returning Authors Index

A very common phenomenon observed among researchers publishing scientific articles is the intentional selection of journals they have already attended in the past. In particular, it is worth analyzing the case when the authors participate in the same journal from year to year.

The Returning Authors Index presented below illustrates the ratio of authors who participated in both a given as well as the previous edition of the journal in relation to all participants in a given year.

Returning Institution Index

The graph below shows the Returning Institution Index, illustrating the ratio of institutions that participated in both a given and the previous edition of the conference in relation to all affiliations present in a given year.

The experience to innovation index

Our experience to innovation index was created to show a cross-section of the experience level of authors publishing in a journal. The index includes the authors publishing at the last edition of a journal, grouped by total number of publications throughout their academic career (P) and the total number of citations of these publications ever received (C).

The group intervals were selected empirically to best show the diversity of the authors' experiences, their labels were selected as a convenience, not as judgment. The authors were divided into the following groups:

  • Novice - P < 5 or C < 25 (the number of publications less than 5 or the number of citations less than 25),
  • Competent - P < 10 or C < 100 (the number of publications less than 10 or the number of citations less than 100),
  • Experienced - P < 25 or C < 625 (the number of publications less than 25 or the number of citations less than 625),
  • Master - P < 50 or C < 2500 (the number of publications less than 50 or the number of citations less than 2500),
  • Star - P ≥ 50 and C ≥ 2500 (both the number of publications greater than 50 and the number of citations greater than 2500).

The chart below illustrates experience levels of first authors in cases of publications with multiple authors.

Top Publications

  • Processing of lignocellulosic polymer wastes using microwave irradiation

    (2022)
    31 Citations
  • Challenges for the utilization of methane as a chemical feedstock

    Robert Franz;Evgeny A. Uslamin;Evgeny A. Pidko

    (2021)
    29 Citations
  • Heterometallic Coii-Lii carboxylate complexes with N-heterocyclic carbene, triphenylphosphine and pyridine: a comparative study of magnetic properties

    Dmitriy S. Yambulatov;Stanislav A. Nikolaevskii;Maxim A. Shmelev;Konstantin A. Babeshkin

    (2021)
    27 Citations
  • Supramolecular organic frameworks derived from bromoaryl-substituted dichlorodiazabutadienes via Cl···Br halogen bonding

    Namiq G. Shikhaliyev;Abel M. Maharramov;Khanim N. Bagirova;Gulnar T. Suleymanova

    (2021)
    21 Citations
  • Low-valent oligogermanium amidophenolate complex comprising a unique Ge4 chain

    Kseniya V. Tsys;Maxim G. Chegerev;Georgy K. Fukin;Andrey G. Starikov

    (2020)
    19 Citations
  • Novel redox active rhodium(iii) complex with bis(arylimino)acenaphthene ligand: synthesis, structure and electrochemical studies

    Artem L. Gushchin;Artem L. Gushchin;Nikolai F. Romashev;Nikolai F. Romashev;Alexandra A. Shmakova;Pavel A. Abramov;Pavel A. Abramov;Pavel A. Abramov

    (2020)
    18 Citations
  • Significant impact of lanthanide contraction on the structure of the phenanthroline complexes

    P.S. Lemport;M.V. Evsiunina;Y.V. Nelyubina;K.L. Isakovskaya

    (2021)
    18 Citations
  • A convenient synthesis of furo[3,2-c]pyran-3-carboxylates from 3-bromo-3-nitroacrylates

    (2022)
    17 Citations
  • Significant impact of lanthanide contraction on the structure of the phenanthroline complexes

    (2021)
    16 Citations
  • Dehydrogenation of propane in the presence of CO2 on Cr(3%)/SiO2 catalyst under supercritical conditions

    Marina A. Tedeeva;Alexander L. Kustov;Alexander L. Kustov;Alexander L. Kustov;Petr V. Pribytkov;Petr V. Pribytkov;Nikolay D. Evdokimenko;Nikolay D. Evdokimenko

    (2020)
    16 Citations

Related Online Degrees & Career Pathways

Exploring Chemistry in the USA opens doors to various related online degrees and career paths. For those interested in healthcare fields, understanding the journey towards becoming a licensed professional is crucial. For instance, learning how to become a certified professional coder CPC can be a strategic move for combining scientific knowledge with administrative healthcare roles.

Many students wonder, is it hard to become a pharmacist? While the path requires dedication and rigorous study, leveraging online education options can make the process more accessible. Similarly, individuals without a nursing background might find programs like online ADN programs for non nurses particularly helpful to start a new career in the medical field.

Additionally, for those aiming to advance their nursing careers quickly, researching the easiest NP programs to get into provides a clearer understanding of available opportunities and requirements. Online platforms increasingly support flexible learning, making it simpler to pivot between related science and healthcare professions.

Best Scientists Contributing to This Journal