六合彩开奖结果-六合彩百万网址_百家乐游戏种类_夜明珠全讯网ym202 (中国)·官方网站

Latest Research Result of the Team Led by Professor Sun Litao, SEU, was Published in Nature Communications

Publisher:吳嬋Release time:2017-04-17Number of Views:963



Recently, the research result of the team led by Professor Sun Litao of School of Electronic Science and Engineering, Electrically driven cation exchange for in situ fabrication of individual nanostructures was published in Nature Communications 8, 14889(2017), with Southeast University as the first complete unit. SEU, PhD student Zhang Qiubo and young teacher Yin Kuibo were co-first author. Professor Sun Litao and Professor Zheng Haimei of University of California Berkeley, were co-corresponding author.

  

Cation exchange is always used to synthesize nano-materials with more complex structure and compostion which are not easily obtained using direct synthesis techniques, and it has been recognized as a popular tool for the synthesis of heterogeneous nanostructures. However, the current cation exchange is difficult to control the synthesis of individual heterogeneous nanostructure. Therefore, it hinders the integrated processing and manufacturing of high precision nano devices in the future.

  

The research team first proposed an electrically driven CE process. By controlling the contact position of ion source, it is possible to selectively prepare and modify individual nanocrystals with complex structure (Fig.1) and precisely control CE process to synthesize heterogeneous nanocrystals in different degree (Fig.2). The team proved electrically driven CE process was an effective way to control the synthesis of heterogeneous nanomaterials. And it also provided a visual and direct basis for understanding the microscopic mechanism of heterogeneous structure during CE process, which made the process and preparation of materials and devices in nano-scale more clear, more accurate and more controllable.

  

This research is another important achievement in the series of work of Professor Suns team in the field of high precision nano-processing and characterization in recent years. The related results were published in Adv. Funct.Mater. (2016), DOI: 10. 1002/adfm. 201603897 (Impact Factor 15.23), Nano Energy 30,771 (2016) (Impact Factor 11.553), 2D Mater. 4, 011001 (2017) (Impact Factor 9.611) and other important academic journals. The research has been funded by the China Outstanding Youth Fund Project of the National Natural Science Foundation, and International Cooperation Key Projects and National Major Scientific Research Equipment Development Projects (11525415, 51420105003, 11327901, 61274114).

  


大发888官方下载 银行| 百家乐官网比赛技巧| A8百家乐的玩法技巧和规则| 实战百家乐十大取胜原因百分百战胜百家乐不买币不吹牛只你能做到按我说的.百家乐基本规则 | 大发888网址怎么找| 百家乐官网稳赢投注方法| 百家乐官网赌博娱乐城| 汉百家乐官网春| 太阳百家乐开户| 黑龙江省| 新世百家乐官网的玩法技巧和规则| 赌博百家乐技术| bet365充值| 百家乐官网娱乐优惠| 博之道百家乐技巧| 彩票预测| 实战百家乐官网的玩法技巧和规则| 百家乐专用台布| 赤水市| 百家乐官网孖宝揽| 百家乐| 百家乐官网棋牌游戏源码| 骰子百家乐的玩法技巧和规则| 沙龙百家乐官网破解| 百家乐发牌器8副| 皇冠博彩网| 新锦江百家乐官网赌场娱乐网规则| 大发888游戏官网下载| 线上百家乐官网代理| 發中發百家乐的玩法技巧和规则| 长岛县| 水果机榨汁机| 澳门百家乐官网送彩金| 香港六合彩信息| 川宜百家乐分析软件| 鼎龙国际娱乐城| 百家乐开闲的几率多大| 百家乐官网桌子租| 网上现金游戏网 | 做生意的门的方向| 阳春市|