波音游戏源码-波音博彩公司评级_百家乐园天将_新全讯网3344111.c(中国)·官方网站

Title

Progress Towards High-Temperature Thermoelectric Materials for Electric Power Generation

Date: 17 March 2016
Speaker: Prof. David R. Clarke

Abstract

To have an impact utilizing waste heat to generate electricity, thermoelectrics must be capable of operating at high temperatures for extended times and be made of earth-abundant elements. This raises severe scientific and echnological challenges since present day thermoelectrics are made of scarce elements and attaining a high fi-gure of merit, ZT, requires nanostructures that are intrinsically unstable at high temperatures. Furthermore, the physical parameters that determine ZT are contra-indicated so it’s diffi-cult to identify prospective new materials. Nevertheless, thermoelectric materials offer many attractive features for energy conversion: they are solid-state, have no moving parts requiring maintenance and so they should be able to operate for dozens of years, thereby enabling their cost to be recouped over many years of productive use. In this seminar, Professor Clarke will introduce two approaches to these challenges: the use of data mining to identify promising classes of materials, and the exploration of compounds that have a natural superlattice structure to produce a coarsening-resistant microstructure so that the thermoelectric properties will not degrade over time.

Speaker Bio

Prof. David R. Clarke

Extended Tarr Family Professor of Materials
John A. Paulson School of Engineering and Applied Sciences
Harvard University

Professor David Clarke’s interests in materials range from the fundamentals to the applied, from ceramics to metals to semiconductors and polymers. He has published over 450 papers in areas ranging from high-temperature materials, such as thermoelectrics and thermal barrier coatings, to dielectric elastomers devices to fundamentals of oxidation and device reliability. He also holds 11 patents and has several others submitted.

Professor Clarke is the inaugural holder of the Extended Tarr Family Professor of Materials and Applied Physics in the Harvard School of Engineering and Applied Sciences. He holds a PhD in Physics from the University of Cambridge, a B.Sc. in Applied Sciences from Sussex University and was awarded a ScD from the University of Cambridge. A member of the National Academy of Engineering since 1999, he is also a Fellow of both the American Physical Society and the American Ceramic Society, and received an Alexander von Humboldt Foundation Senior Scientist Award in 1993. He shared the 2008 Japanese NIMS Award for Recent Breakthroughs in Materials Science for Energy and Environment, is a Distinguished Life Member of the American Ceramic Society and was recently listed as author of one of the 11 best papers in the 110 years of publications on ceramics and glasses.

Video

Photos

gallery_made_with_nanogallery2
赌百家乐官网庄闲能赢| 大都会百家乐的玩法技巧和规则| 大连娱网棋牌下载| 大家旺百家乐官网娱乐城| 新全讯网22335555| 百家乐官网真钱棋牌| 百家乐官网园蒙| 威尼斯人娱乐城网址多少| 稳赢的百家乐官网投注方法| 百家乐官网是娱乐场| 大发888加盟合作| 金冠百家乐官网娱乐城| 赌百家乐波音备用网| 大发888下载客户端| 长城百家乐官网游戏| 百家乐澳门百家乐澳门赌场| 亲朋棋牌官方下载| 百家乐开户最快的平台是哪家| 天空娱乐城| 休闲百家乐官网的玩法技巧和规则 | 丽都百家乐的玩法技巧和规则| 百家乐官网返水1.2不限| 摩纳哥百家乐的玩法技巧和规则| 赢真钱的棋牌游戏| 单张百家乐论坛| 嫩江县| 百家乐筹码方形| 元游棋牌游戏大厅下载| 百家乐游戏大厅下| 百家乐官网游戏机破解方法| 传奇百家乐的玩法技巧和规则| 金三角百家乐官网的玩法技巧和规则 | 百家乐官网赌场彩| 封开县| 南宁百家乐赌| 24山向吉凶水法| 嘉义市| 太阳城娱乐城官网| 百家乐官网平注法口诀技巧| 全讯网168268| 百家乐官网庄闲符号记|