博彩公司-真人在线博彩公司大全_百家乐园首选去澳_全讯网赢足一世 (中国)·官方网站

網(wǎng)站頁面已加載完成

由于您當(dāng)前的瀏覽器版本過低,存在安全隱患。建議您盡快更新,以便獲取更好的體驗(yàn)。推薦使用最新版Chrome、Firefox、Opera、Edge

Chrome

Firefox

Opera

Edge

ENG

當(dāng)前位置: 首頁 · 學(xué)術(shù)交流 · 正文

學(xué)術(shù)交流

【學(xué)術(shù)報(bào)告】德國慕尼黑工業(yè)大學(xué)Peter Müller-Buschbaum教授學(xué)術(shù)報(bào)告

發(fā)布時(shí)間:2019年10月08日 來源:柔性電子研究院 點(diǎn)擊數(shù):

報(bào)告題目:Nanostructured polymer films for energy harvesting applications

報(bào)告人:Peter Müller-Buschbaum教授(德國慕尼黑工業(yè)大學(xué))

報(bào)告時(shí)間:2019年10月10日(星期四)上午10:00-11:00

報(bào)告地點(diǎn):長安校區(qū)啟翔樓357會(huì)議室

邀請人:宋霖教授、陳永華教授

承辦學(xué)院:柔性電子研究院

聯(lián)系人:張倩文

聯(lián)系電話:88460889

報(bào)告簡介:

Among the next generation solar cells, in particular organic photovoltaics are gaining impact as a promising alternative to conventional silicon-based solar cells. Using nanostructured polymer films as active material for the energy conversion offers several potential advantages, as for instance the material availability and low-cost processing techniques. Due to the potential device flexibility and tunable colors and shapes, organic photovoltaics could be integrated into a wide range of applications, combining functionality with design in fields as diverse as mobility, architecture or clothing. However, efficiencies of organic solar cells still stay far below those of their commercially available inorganic counterparts, which demonstrates the need for strengthened fundamental understanding.

In particular the morphology of the active layer of the organic solar cells is of highest importance for the device performance, because it needs to facilitate exciton creation, exiton migration and splitting at tailored interfaces and transport of the generated charge carriers to the corresponding electrodes. All these different tasks require an optimized polymer nanostructure, which in turn requires techniques being capable of probing these nanostructures of the active layers of solar cells. Using advanced scattering techniques such as grazing incidence small angle X-ray and neutron scattering (GISAXS and GISANS) enables to probe the morphology of the active layers from the molecular to the mesoscopic scale. As a result a structure function-relationship can be established, which provides insights into fundamentals of organic solar cells. In-situ investigations enable deeper understanding of film formation and device degradation.


報(bào)告人介紹:



Peter Müller-Buschbaum is full professor in the Physics Department at the Technical University of Munich, Germany, heading the Chair of Functional Materials. Moreover, he is scientific director of the Munich neutron source FRM-II and scientific director of the Heinz Maier-Leibnitz Zentrum MLZ. He is heading the keylab “TUM.solar”, which focuses on research of solar energy conversion and storage based on nanomaterials. He is heading the “Network for Renewable Energies” (NRG) of the “Munich School of Engineering” (MSE), and he is the German representative at the “European Polymer Federation” (EPF) for polymer physics. He is elected chairman of the “Hamburg User Committee” (HUC) at the synchrotron radiation laboratory DESY in Hamburg, member of the “European Synchrotron User Organization” (EUSO) and associate editor of the journal “ACS Applied Materials & Interfaces”. His research interests cover polymer and hybrid materials for energy applications with a special focus on thin films and nanostructures, including kinetic, in-situ and in-operando experiments on solar cells, thermoelectric materials and batteries.

噢门百家乐注码技巧| 葡京百家乐官网玩法| 百家乐官网游乐园 | 百家乐试玩活动| 明升 | 百家乐官网博娱乐网| 网上百家乐真坑人| 盛世国际娱乐城| 百家乐三珠连跳打法| 皇冠现金网哪个最好| 百家乐官网桌子轮盘| 天博百家乐娱乐城| 百家乐官网小音箱| 奇迹百家乐的玩法技巧和规则| 赌球平台| 澳门百家乐规则视频| 百家乐官网真人百家乐官网赌博| 鸟巢百家乐的玩法技巧和规则| 百家乐官网巴厘岛娱乐城| 太阳城巴黎左岸| 凯旋门百家乐官网游戏| 百家乐游戏机高手| 澳门百家乐官网实战视频| 云鼎娱乐城怎么存钱| 新时代百家乐官网的玩法技巧和规则| 大发888真人斗地主| 游戏厅百家乐软件| 怎样玩百家乐官网看路| 现金网注册| 长江百家乐的玩法技巧和规则| 百家乐官网庄家必赢诀窍| 大余县| 破解百家乐公式| 哈尔滨百家乐官网赌场| 97玩棋牌游戏中心| 成人百家乐的玩法技巧和规则| 百家乐官网赌博破解方法| 太阳城在线娱乐城| 百家乐赢率| 巨星百家乐官网的玩法技巧和规则 | 太湖县|