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Synthetic Organic Chemistry Methods

Synthetic Organic Chemistry Methods is a research topic within Organic Chemistry. Science Explorer counts 62k research works in it since 1950. 18.0% of them reached the world's top 10% most cited for their field and year.

This cluster of papers focuses on the advances in olefin metathesis chemistry, particularly the development of ruthenium-based catalysts for various types of metathesis reactions such as ring-closing metathesis and cross-metathesis. The research also covers applications in polymerization, enantioselective synthesis, natural product synthesis, and industrial processes.

  • Olefin Metathesis
  • Ruthenium Catalysts
  • Ring-Closing Metathesis
  • Cross-Metathesis
  • Catalytic Activity
  • Organometallic Chemistry
  • Polymerization
  • Enantioselective Synthesis
  • Natural Product Synthesis
  • Industrial Applications
Research works
62k
fractional, since 1950
In the world top 10%
11k
per year above
Top-10% rate
18.0%
share of its works in the world top 10%
Growth, 2013–17 → 2018–22
-38%
the tick is no change

Which countries lead Synthetic Organic Chemistry Methods research?

By volume, China and the United States publish the most (1.1k and 445 works in 2022–2025).

By volume, 2022–2025

  1. 1 China 1.1k works
  2. 2 United States 445 works
  3. 3 Japan 293 works
  4. 4 India 268 works
  5. 5 Germany 202 works
  6. 6 France 137 works
  7. 7 Russia 112 works
  8. 8 Spain 80 works
  9. 9 United Kingdom 77 works
  10. 10 South Korea 75 works

How concentrated that is

The same countries as shares of everything the list above accounts for. A node where two countries do two thirds of the work and one spread evenly across twelve read alike as a ranking and not at all alike here.

China: 38.5%United States: 16.2%Japan: 10.7%India: 9.7%6 others listed: 24.9%39%largest
China1,059 · 38.5%United States445 · 16.2%Japan293 · 10.7%India268 · 9.7%6 others listed684 · 24.9%

Shares of the rows listed above, not of the whole node.

Which institutions lead Synthetic Organic Chemistry Methods research?

By volume in 2022–2025, Chinese Academy of Sciences publishes the most Synthetic Organic Chemistry Methods research, followed by Sichuan University and Centre National de la Recherche Scientifique.

Who are the leading researchers in Synthetic Organic Chemistry Methods?

The most-cited researchers publishing on Synthetic Organic Chemistry Methods include Judith A. K. Howard, Krzysztof Matyjaszewski and Avelino Corma.

  1. 1 Judith A. K. Howard United Kingdom 5.5k citations
  2. 2 Krzysztof Matyjaszewski United States 4.4k citations
  3. 3 Avelino Corma Spain 4.4k citations
  4. 4 Barry M. Trost United States 3.8k citations
  5. 5 E. J. Corey United States 3.6k citations
  6. 6 Peter G. Jones Germany 3.6k citations
  7. 7 F. Albert Cotton United States 3.5k citations
  8. 8 Stephen L. Buchwald United States 3.5k citations
  9. 9 David W. C. MacMillan United States 3.5k citations
  10. 10 K. Barry Sharpless United States 3.3k citations

Ranked by citations received across their whole record, among researchers with at least three works on this topic.

Where is Synthetic Organic Chemistry Methods research done?

The largest centres of Synthetic Organic Chemistry Methods research in 2022–2025 are Beijing (China), Shanghai (China), Tokyo (Japan) and Guangzhou (China).

Largest cities, 2022–2025

  1. 1 Beijing China 171 works
  2. 2 Shanghai China 115 works
  3. 3 Tokyo Japan 84 works
  4. 4 Guangzhou China 53 works
  5. 5 Hefei China 52 works
  6. 6 Moscow Russia 49 works
  7. 7 Chengdu China 46 works
  8. 8 Hangzhou China 45 works
  9. 9 Paris France 44 works
  10. 10 Tianjin China 38 works
See Synthetic Organic Chemistry Methods on the map

Where is the best place to study Synthetic Organic Chemistry Methods?

Among universities, judged by research, Southern University of Science and Technology, Nankai University and Academy of Scientific and Innovative Research score highest, combining excellence, specialisation, size, growth and international reach. Research strength is one signal when choosing where to study; it does not measure teaching.

0%20%40%mean 24.57%fractional works in this node (log) →share in the world top 10% →Southern University of Science and Technology: 11, 35.8%Nankai University: 16, 39.3%Academy of Scientific and Innovative Research: 15, 7.8%ETH Zurich: 14, 32.0%California Institute of Technology: 8, 26.7%University of Science and Technology of China: 24, 20.1%Tokyo Metropolitan University: 9, 18.9%University of Fribourg: 8, 18.0%University of Chinese Academy of Sciences: 24, 21.1%Anhui University: 12, 26.0%Nankai UniversitySouthern University …ETH ZurichAcademy of Scientifi…
above the meannear itbelow it

One dot per university in the table below. The upper left is the interesting corner: small places doing unusually strong work.

#UniversityScoreTop 10%SpecialisationWorksGrowth
1 Southern University of Science and TechnologyChina 62.135.8%6.3×11 +592.1%
2 Nankai UniversityChina 54.539.3%7.3×16 -34.1%
3 Academy of Scientific and Innovative ResearchIndia 54.27.8%15.0×15 +491.8%
4 ETH ZurichSwitzerland 52.832.0%6.5×14 -38.3%
5 California Institute of TechnologyUnited States 49.326.7%11.0×8 -28.5%
6 University of Science and Technology of ChinaChina 48.320.1%6.1×24 +34.6%
7 Tokyo Metropolitan UniversityJapan 47.418.9%15.5×9 +67.3%
8 University of FribourgSwitzerland 47.018.0%17.3×8 +37.7%
9 University of Chinese Academy of SciencesChina 46.821.1%4.3×24 +85.9%
10 Anhui UniversityChina 46.826.0%7.7×12

Universities only. Score blends excellence (30%), specialisation (25%), size (20%), growth (15%) and international reach (10%), 2015–2022; growth compares 2010–14 with 2015–19.

Is Synthetic Organic Chemistry Methods research growing?

Output in 2018–2022 was 38% lower than in 2013–2017, peaking in 2009.

19801990200020102020
grewheldshrank

The same series as a ribbon — one cell per year, darker for more. The line above answers how much; this answers when.

Which topics inside it are moving

Growth and decline on one axis around a shared zero. Two lists side by side hide the thing that matters: whether the growth dwarfs the decline, or the other way round.