New progress in research on mesoporous materials: influence of solvent volume and exploration of industry frontiers
Effect of solvent volume on mesoporous silica nanoparticles
Mesoporous silica nanoparticles are widely used in biomedicine, catalysis, adsorption and other fields. Biology News reports that solvent volume significantly affects the structure and texture properties of biosurfactant-assisted mesoporous silica nanoparticles, providing new ideas for preparation and optimization.
Chinese Pioneer in Mesoporous Materials Research
Chinese scientists have made remarkable achievements in the field of mesoporous materials. Professor Zhao Dongyuan of Fudan University was named a "Top Chinese Scientist" by Yicai Global for his contribution to the research of mesoporous materials, especially for his breakthroughs in catalysts and drug delivery systems.
Professor Wan Ying from Shanghai Normal University was invited to Lanzhou Institute of Chemical Physics for exchanges and shared the latest results of mesoporous materials, indicating that this field has attracted much attention among universities and research institutions.
Honor and Inspiration
Academician Xu Ruren of Jilin University won the 4th Chinese Chemical Society Lifetime Achievement Award, recognizing his outstanding contributions to materials science, especially the research of mesoporous materials. Xu Ruren's research promoted scientific progress and set an example.
Professor Yang Jinlong’s team from the School of Materials Science and Engineering at Tsinghua University won the 2018 Best Paper Award from the Journal of the American Ceramic Society, demonstrating the international influence of China’s mesoporous materials research and injecting impetus into the industry.

Application prospects of mesoporous materials
Mesoporous materials have great potential in fields such as biomedicine and catalysis. Mesoporous silica nanoparticles can deliver drugs efficiently, reduce side effects and improve efficacy. The high specific surface area and adjustable pore structure of mesoporous materials make them ideal catalyst carriers, significantly improving catalytic efficiency.
However, the influence of solvent volume on mesoporous structure and the cost and large-scale production issues in practical applications still need to be solved to ensure the stability and consistency of the materials.
Industry logic and trends
Mesoporous materials research relies on breakthroughs in basic science and interdisciplinary collaboration. The contributions of scientists such as Professor Zhao Dongyuan, Academician Xu Ruren and Professor Yang Jinlong provide a solid foundation for research. Academic exchanges and international cooperation have been continuously strengthened, providing a broad platform for the development of mesoporous materials.
Mesoporous materials are moving from laboratories to industrial applications, and controlling material performance and cost is the key to widespread application in the future.
Reference sources
- Effect of solvent volume on the structure and textural properties of biosurfactant-assisted mesoporous silica nanoparticles- Biology News (July 20, 2026)
- Top Chinese Scientists: Zhao Dongyuan, Pioneer in Mesoporous Materials- Yicai Global (August 22, 2023)
- Professor Wan Ying from Shanghai Normal University came to Lanzhou Institute of Chemical Physics for academic exchanges- University of Chinese Academy of Sciences (June 1, 2023)
- Academician Xu Ruren won the 4th Chinese Chemical Society Lifetime Achievement Award- Jilin University (May 22, 2024)
- Professor Yang Jinlong’s team from the School of Materials Science and Engineering at Tsinghua University won the 2018 Best Paper Award from the Journal of the American Ceramic Society- tsinghua.edu.cn (October 14, 2019)
FAQ
How does solvent volume affect the structural and textural properties of mesoporous silica nanoparticles?
Solvent volume has a significant impact on the structure and texture properties of biosurfactant-assisted mesoporous silica nanoparticles. This effect provides new ideas for the preparation and optimization of mesoporous materials.
What achievements have Chinese scientists made in the research of mesoporous materials?
Chinese scientists have made remarkable achievements in the field of mesoporous materials research. For example, Professor Zhao Dongyuan of Fudan University was named the "Top Chinese Scientist" and made breakthroughs in catalysts and drug delivery systems; Academician Xu Ruren of Jilin University won the Lifetime Achievement Award of the Chinese Chemical Society for his outstanding contributions in the field of materials science; Professor Yang Jinlong's team of the School of Materials Science and Technology of Tsinghua University won the 2018 Best Paper Award of the Journal of the American Ceramic Society.
In what fields do mesoporous materials have broad application prospects?
Mesoporous materials have broad application prospects in biomedicine, catalysis, adsorption and other fields. Mesoporous silica nanoparticles can be used as efficient drug delivery carriers, reducing side effects and improving efficacy; the high specific surface area and adjustable pore structure of mesoporous materials also make them ideal catalyst carriers, which can significantly improve catalytic efficiency.
What are the main challenges in mesoporous materials research?
The main challenges in the research of mesoporous materials include the influence of solvent volume on mesoporous structure, cost control in practical applications, and large-scale production issues. Ensuring material stability and consistency is the key to realizing the industrial application of mesoporous materials.
What is the development trend of mesoporous materials?
The research and development trends of mesoporous materials rely on breakthroughs in basic science and interdisciplinary cooperation. With the continuous strengthening of academic exchanges and international cooperation, mesoporous materials are moving from laboratories to industrial applications. The key going forward will be controlling material properties and costs to support a wider range of applications.