澳门金沙-澳门金沙赌场vip厅_皇城百家乐娱乐城_全讯网开奖直播(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).

  


娱乐城百家乐官网可以代理吗 | 百家乐视频多开器| 云顶会所| 7人百家乐官网中号桌布| ,大发扑克下载| 桐庐棋牌世界| 百家乐官网1元投注| 威尼斯人娱乐场官网| 百家乐官网平台送彩金| 希尔顿百家乐娱乐城 | 百家乐官网开户送18元| 任你博百家乐官网的玩法技巧和规则 | 百家乐官网鸿泰棋牌| 如何玩百家乐扑克| 揭阳市| 百家乐庄家必赢诀窍| 大发888娱乐场下载 制度| 最好的百家乐官网博彩网站| 百家乐平一直压庄| 百佬汇百家乐官网的玩法技巧和规则 | 达孜县| 赌百家乐心里技巧| 大发888合营商| 百家乐官网太阳城娱乐城| 聚龍社百家乐的玩法技巧和规则| 顶级赌场 官方直营网络赌场| 真人百家乐好不好玩| 罗江县| 百家乐群shozo| 百家乐官网技巧之微笑心法 | 3U百家乐的玩法技巧和规则 | 太阳城百家乐官网娱乐官方网| 百家乐园百利宫娱乐城信誉好...| 大丰市| 三公百家乐在哪里可以玩| 金沙百家乐官网娱乐城场| 大发888娱乐游戏下载 官方网| 爱赢百家乐官网的玩法技巧和规则| 百家乐官网如何取胜| 威尼斯人娱乐城进不了| 百家乐官网真人荷官网|