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第450期“工物学术论坛”: 通用人工智能技术曙光与冷思考
Phase Separation in Synapse Formation & Function
压电MEMS超声波传感器
超分子聚合与可循环再生材料
报告题目:
Soft Material Design at the Interfaces with Catalysis and Biology
 报告人:
Guan Zhibin
美国加州大学Irvine分校  教授
报告时间:
2007-12-19 14:30
报告地点:
化学系何添楼406会议室
主办单位:
清华大学化学系
  简介:

“Soft Material Design at the Interfaces with Catalysis and Biology”

Professor Zhibin Guan

Department of Chemistry

1102 Natural Sciences II
University of California
Irvine, CA 92697-2025, USA
 
Email: zguan@uci.edu
Phone: 949 824-5172
http://www.chem.uci.edu/people/faculty/zguan/
 
 

Our research is centered on the design of new polymeric materials at two interfaces: one with catalysis and the other with biology. In this presentation, I’ll first provide a quick overview of our efforts at the catalysis interface. Our efforts at this interface are focused on the development of efficient catalytic synthesis of soft nanomaterials. By using late-transition-metal chain walking catalysts, we can synthesize functional dendritic nanoparticles directly from very simple olefin monomers. The second part of the talk will be focused on our recent results at the second interface area: new biomimetic polymer synthesis. Inspiration from natural biopolymers is used in our lab to design macromolecular materials having precise secondary structures for advanced mechanical properties. Modular domain structures are commonly seen in natural biopolymers such as adhesion proteins and skeletal muscle protein, titin, which assume important mechanical functions in biological systems. The remarkable combined strength and toughness of titin was proposed to derive from its modular structure comprising a linear array of domains, in which each domain is held together by secondary forces.  We have synthesized a number of titin-mimicking modular polymers having multiple domain structures. Single molecule experiments revealed sequential unfolding of the loops on a polymer chain. This talk will discuss the design principle, synthesis, single molecule studies, and correlation of single molecule and macroscopic mechanical properties of the modular polymer.

 

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