Advanced Materials and Semiconductor Technologies
Advanced Materials and Semiconductor Technologies is a research topic within Materials Chemistry. Science Explorer counts 2k research works in it since 1950. 9.4% of them reached the world's top 10% most cited for their field and year.
This cluster of papers covers a wide range of topics in materials science and engineering, including thin-film deposition, nanomaterial synthesis, polymer coatings, thermal conductivity, semiconductor devices, nanocomposite coatings, renewable energy sources, electric drive systems, and sensing properties. The research encompasses advancements in various materials and their applications across different fields.
- Thin-Film Deposition
- Nanomaterials Synthesis
- Polymer Coatings
- Thermal Conductivity
- Semiconductor Devices
- Nanocomposite Coatings
- Renewable Energy Sources
- Electric Drive Systems
- Sensing Properties
- Information Technology
- Research works
- 2k fractional, since 1950
- In the world top 10%
- 187 per year above
- Top-10% rate
- 9.4% share of its works in the world top 10%
- Growth, 2013–17 → 2018–22
- +38% the tick is no change
Which countries lead Advanced Materials and Semiconductor Technologies research?
By volume, Russia and China publish the most (113 and 42 works in 2022–2025).
By volume, 2022–2025
- 1 Russia 113 works
- 2 China 42 works
- 3 Ukraine 39 works
- 4 Indonesia 27 works
- 5 Uzbekistan 23 works
- 6 United States 23 works
- 7 India 15 works
- 8 Germany 9 works
- 9 Iraq 7 works
- 10 Japan 7 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.
Shares of the rows listed above, not of the whole node.
Which institutions lead Advanced Materials and Semiconductor Technologies research?
By volume in 2022–2025, Tashkent State Technical University named after Islam Karimov publishes the most Advanced Materials and Semiconductor Technologies research, followed by Yuriy Fedkovych Chernivtsi National University and Samara State Technical University.
By volume, 2022–2025
- 1 Tashkent State Technical University named after Islam KarimovUzbekistan 6 works
- 2 Yuriy Fedkovych Chernivtsi National UniversityUkraine 5 works
- 3 Samara State Technical UniversityRussia 4 works
- 4 Moscow Power Engineering InstituteRussia 4 works
- 5 Jilin UniversityChina 3 works
- 6 National Technical University "Kharkiv Polytechnic Institute"Ukraine 3 works
- 7 National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”Ukraine 3 works
- 8 Saint Petersburg State Electrotechnical UniversityRussia 3 works
- 9 Bauman Moscow State Technical UniversityRussia 3 works
- 10 Lviv Polytechnic National UniversityUkraine 3 works
Where is Advanced Materials and Semiconductor Technologies research done?
The largest centres of Advanced Materials and Semiconductor Technologies research in 2022–2025 are Moscow (Russia), Saint Petersburg (Russia), Tashkent (Uzbekistan) and Kyiv (Ukraine). Among places with at least 20 works in it, it is an unusually large share of all research in Moscow.
Largest cities, 2022–2025
- 1 Moscow Russia 38 works
- 2 Saint Petersburg Russia 13 works
- 3 Tashkent Uzbekistan 11 works
- 4 Kyiv Ukraine 11 works
- 5 Beijing China 8 works
- 6 Novosibirsk Russia 6 works
- 7 Kharkiv Ukraine 5 works
- 8 Chernivtsi Ukraine 5 works
- 9 Samara Russia 5 works
- 10 Minsk Belarus 5 works
Where it is the local speciality
- MoscowRU · 38.5 works9.5×
Location quotient: how much more of its research is in Advanced Materials and Semiconductor Technologies than the world average.
Is Advanced Materials and Semiconductor Technologies research growing?
Output in 2018–2022 was 38% higher than in 2013–2017, peaking in 2026. The fastest-growing topics are Advanced Materials and Semiconductor Technologies.
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.