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Biography:
Jiang Lei, born in Changchun, Jilin in March 1965, an inorganic chemist, an expert on nanomaterials, a member of the Chinese Academy of Sciences, a member of the Academy of Sciences in the developing countries, a foreign member of the National Academy of Engineering, a researcher and doctoral supervisor of the Institute of Chemistry of the Chinese Academy of Sciences, Beijing University of Aeronautics and Astronautics Dean of the School of Chemistry and Environment. In 1987, Jiang Lei graduated from Jilin University with a major in solid physics and stayed at the university to study a master‘s degree in physical chemistry. After obtaining a master‘s degree in 1990, he continued to study for a doctorate at the university. In 1992, he was sent to Tokyo, Japan, as a doctoral student jointly trained by Japan and Japan. Studying at university, under the guidance of international photochemical scientist Akira Fujishima; continued to do postdoctoral research at the University of Tokyo after obtaining a doctorate from Jilin University in 1994; entered the work of the Kanagawa Institute of Science and Technology of the Japan Science and Technology Agency in 1996; and received the Youth Special Award from the Ministry of Education, Culture, Sports, and Science in 1998 Incentive fund, selected by the Chinese Academy of Sciences Hundred Talents Program in the same year; joined the Institute of Chemistry of the Chinese Academy of Sciences in 1999; received funding from the National Science Fund for Distinguished Young Scholars in 2001; concurrently served as chief scientist of the National Nanoscience Center in 2004; and concurrently in Chemistry and Environment of Beijing University of Aeronautics and Astronautics in 2008 Dean of the Academy; elected as a member of the Chinese Academy of Sciences in 2009; elected as a member of the Academy of Sciences of the Developing Countries in 2012; won the prize of the Third China International Nanoscience and Technology Conference in 2015; elected as a foreign member of the National Academy of Engineering in 2016; won the national innovation competition in 2017 .
He is mainly engaged in the preparation of biomimetic functional interface materials and the study of their physicochemical properties, revealing the relationship between the structure and properties of special wettable surfaces in nature, and proposed a "binary synergistic nano interface material" design system. In the preparation, characterization and properties research of super-parent / super-biphobic functional materials, the invention of template method, phase separation method, self-assembly method, electrospinning method and other practical superhydrophobic interface materials has been invented. method. A variety of bionic superhydrophobic interface materials with special functions were prepared.
In order to facilitate everyone to quickly preview the scientific research achievements of Academician Jiang Lei and his research team in recent years, the editors summarized the results publicized on the materials:
Research results:
Paper: High-Strength Janus 3D Porous Membrane Becomes Efficient Catcher of "Blue Energy"
The research team of Jiang Lei and Dr. Zhou Yahong of the Institute of Physics and Chemistry of the Chinese Academy of Sciences have carried out a series of work on ion-salt differential power generation. Today, they cooperated with Professor Jiang Zhenhua‘s team of the Special Plastics Center of the College of Chemistry of Jilin University. A series of functional polyarylether ionic polymers with adjustable surface charge polarity / charge density were prepared through accurate molecular functional design. Based on this, the authors prepared a series of Janus three-dimensional nanoporous membranes, and used them to generate electricity with concentration difference as a "blue energy" nano converter. By mixing ionic solutions that simulate the concentration of seawater and river water, a power density of 2.66 W / m2 was achieved, and a high power density of 5.1 W / m2 was achieved at higher concentrations. The multi-membrane series can drive the calculator to work normally. This achievement was published online in Science Advances under the title "Unique Ion-Rectification in Hypersaline Environment: A High-Performance and Sustainable Power Generator System". (DOI: 10.1126 / sciadv.aau1665). The first author is Zhu Xuanbo, a PhD candidate at Jilin University.
In this work, the porosity and charge density of three-dimensional porous membranes were controlled through molecular control. The pore diameters of porous membranes were basically kept the same, and large-area preparation of a series of Janus membranes was achieved by simple methods. This series of membranes all show good ion selection and rectification performance. The high charge density breaks the limitation of concentration on rectification and avoids internal losses, which makes Janus membranes perform very well in energy-generating devices. Based on the stable molecular structure of polyarylether itself, Janus membrane also exhibits excellent stability. The multi-membrane series can drive the calculator to work normally.
Link: http://advances.sciencemag.org/content/4/10/eaau1665
Paper: Concept of "Quantum Confined Superfluid"
Academician Jiang Lei of the Institute of Physics and Chemistry of the Chinese Academy of Sciences defined the fast single-chain quantum transmission of ions and molecules in biological channels as "quantum-limited confined superfluids" and pointed out that the ordered superfluids of ions and molecules in confined channels were "quantum tunnels" "Through-fluid effect", the "tunneling distance" is consistent with the period of the quantum confined superfluid. Combining with the recent research results of this research group (Adv. Mater., 2016, 28, 3345-3350; Angew. Chem. Int. Ed., 2017, 129, 5814-5818), the authors found that the bionic system also has quantum confined superfluids. Phenomenon, such as the rapid transport of substances in artificial ion channels and water channels (~ 106 ions per second). Finally, the author pointed out in the outlook that by introducing the concept of quantum confined superfluids into the field of chemistry, precise chemical synthesis will be triggered, that is, quantum organic, inorganic, and polymer reactions. Introduced into the field of biology, biochemistry, biophysics, bioinformatics, and biomedicine will generate quantum superfluids. On this basis, other new sciences and technologies will also be produced. The article was published in Science CHINA Materials under the title "Quantum-confined superfluidics: From nature to artificial".
Literature link: Quantum-confined superfluidics: From nature to artificial (Sci. China Mater., 2018, DOI: | 10.1007 / s40843-018-9289-2)
Paper: Solution Preparation of π-Conjugated Polymer / Graphene Composites for High Performance Field Effect Transistors
Academician Jiang Lei from the Institute of Physics and Chemistry of the Chinese Academy of Sciences, Dr. Wu Yuchen, and associate professor Zhu Jia (co-corresponding author) from Beijing Normal University have published an article entitled "Solution Adsorption Formation of a π- Conjugated Polymer / Graphene Composite for High-Performance Field-Effect Transistors ". This article mainly introduces a method of constructing π-conjugated polymer / graphene composites, which can avoid the existing limitations and pattern the material into a one-dimensional array. Based on the π-conjugated system, the distance of π-π stacking between graphene and polymer can be reduced, thereby improving the charge transport performance. And due to the incorporation of graphene, the composites show thermal stability. It is generally believed that the construction of π-conjugated complexes shows that it is feasible to integrate organic molecules and two-dimensional materials into microstructure arrays by designing and manufacturing large-area, low-cost, high-efficiency functional devices.
Literature link: Solution Adsorption Formation of a π-Conjugated Polymer / Graphene Composite for High-Performance Field-Effect Transistors. (Adv. Mater., 2017, DOI: 10.1002 / adma.201705377)
Thesis: Macroscopic shape control for efficient bubble adhesion on superhydrophobic PMMA surfaces
Academician Jiang Lei (corresponding author) and Dr. Yu Cunming (corresponding author) and others on Adv. Funct. Mater. "The results of research on super-hydrophobic polymethyl methacrylate tablets of different shapes for bubble adhesion and degradation of methyl blue by loading ozone in an aqueous environment were published. Due to the poor solubility of ozone in water, it is not conducive to the purification of water by ozone. In this paper, the adhesion of microbubbles on superhydrophobic surfaces is used to achieve long stays of bubbles in the aqueous environment and degradation of organic dye pollutants Aspect has been well applied.
Literature link: Morphology-Control Strategy of the Superhydrophobic Poly (Methyl Methacrylate) Surface for Efficient Bubble Adhesion and Wastewater Remediation (Adv. Funct. Mater., 2017, DOI: 10.1002 / adfm.201702020)
Thesis: Bionic lotus leaf-Janus interface material combining super-hydrophilic surface with super-hydrophobic surface
Associate Professor Cao Moyuan of Tianjin University and Academician Jiang Lei (co-corresponding author) of Beijing University of Aeronautics and Astronautics and Institute of Physics and Chemistry of the Chinese Academy of Sciences reported on the topic "Improved Interfacial Floatability of Superhydrophobic / Superhydrophilic Janus Sheet Inspired by Lotus Leaf" in the journal Advanced Functional Materials. An asymmetric interface material with two-sided super-wetting properties. The author studied the lotus leaf and prepared a copper sheet with a superhydrophobic surface on the lower surface and a superhydrophilic copper surface on the lower surface. The author called it "Janus copper sheet" (that is, two-sided god copper sheet). This Janus copper sheet can be stably "fixed" at the air / water interface and exhibits stable interfacial floatability. Compared with super-hydrophobic substrates that can also float, Janus copper sheets not only can float, they can even adhere to the air / water interface as fixed; at the same time, they show on multi-phase interfaces such as hexane-water and CCl4-water. Similar properties. Janus copper sheet has significantly enhanced stability and anti-rotation characteristics. It can sail on the water like a ship, even in turbulent currents; it can withstand strong winds and even conquer "waterfalls". This discovery has found a new breakthrough for Janus interface materials, and also expanded the application range of amphoteric materials with super wettability.
Literature link: Improved Interfacial Floatability of Superhydrophobic / Superhydrophilic Janus Sheet Inspired by Lotus Leaf (Adv. Funct. Mater., 2017, DOI: 10.1002 / adfm.201701466)
Paper: Ultra-wet membranes for effective separation of ionic liquids / water
Academician Jiang Lei and Dr. Liu Hongliang (Communications) of the Institute of Physics and Chemistry of the Chinese Academy of Sciences published an article entitled "Membrane-Based Strategy for Efficient Ionic Liquids / Water Separation Assisted by Superwettability" on Advanced Functional Materials. Based on the intrinsic wetting threshold theory, the researchers prepared a porous membrane of a hydrophobic and super-ionic liquid (C4MImPF6) by regulating the free energy on the surface of the material to achieve the efficient separation of immiscible IL / water mixtures driven by gravity. For membrane separation technology, the two most important indicators are retention selectivity and separation flow rate. Taking a 600-mesh stainless steel mesh-based porous membrane as an example, the separation efficiency of the membrane from the mixed solution is greater than 98%, and the penetration of the ionic liquid The flow rate exceeds 1000Lm-2h-1.
Literature link: Membrane-Based Strategy for Efficient Ionic Liquids / Water Separation Assisted by Superwettability (Advanced Functional Materials, 2017, Doi: 10.1002 / adfm.201606544)
Paper: DNA-based bionic light-controlled ion transmission channel
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