全讯网-皇冠网_百家乐网_全讯网娱乐 (中国)·官方网站

今天是
今日新發布通知公告0條 | 上傳規范

物理學院“博約學術論壇”系列報告第 95 期( 2016年第 23期)

發布日期:2016-12-04

Title:Electromigration on Stepped Surfaces
報告人:Dr. Cormac ó Coileáin (Trinity College Dublin)
時  間:2016年12月5日(周一)上午10:00
地  點:良鄉理學樓C樓二樓報告廳


ABSTRACT
The influence of electric fields on the dynamics of steps, on vicinal surfaces, during high temperature annealing in ultra-high vacuum is examined. An innovative experimental method using custom setup was used to explicitly isolate the electromigration and thermal effects in the dynamics of the step-bunching process on the vicinal Si(111) surface.
Using atomic force microscopy to characterise and analyse the morphologies of stepped Si(111) annealed at 1130 °C and 1270 °C, it was found a reduction of the electric field results in a significant expansion of step-bunch width and an elongation of the crossing steps running along the terraces. The morphologies of step-bunches produced by annealing at 1130 °C (step-up electric field) and 1270 °C (step-down electric field), are usually described by the generalised BCF and transparent step models, respectively. These models predict different scaling relationships of the form ym ∝ hαEq, between the maximum slope of a step-bunch ym, step bunch height h and electromigration field E.  Experimentally extracted scaling exponents, α ≈2/3 and q ≈1/3, for Regime III (1270 °C) show good agreement with theoretical predictions. However, the scaling exponents α ≈ 3/5 and q ≈1/3 extracted from the morphologies created in the Regime II (1130 °C), were found to differ from those deduced from the transparent step model.
We also examine other morphological differences, such as the distinct difference observed in how the (1×1) to (7×7) phase transition manifests itself on vicinal Si(111) surfaces off-cut in the [11-2] and [-1-12] directions.  This method also allows for the first time the value of the critical electric field (Ecr), required to induce the step-bunching instability, to be probed. The dependence of Ecr on the mean initial inter-step distance (l) is investigated and discussed. Extended annealing times results in the anti-band surface instability. Using the initial or onset stage of antiband formation on step-bunched surfaces was examined at 1270 ?C while systematically varying the E-field it was possible to estimate the adatom effective charge (qeff).  The effect of varying the initial inter-step distance on the onset of the antiband instability is also discussed and experimentally examined.
Finally we consider electromigration induced step-bunching on other surfaces, the behaviour was observed experimentally for the first time on an insulating oxide surface on vicinal C-plane α-Al2O3. Surface faceting cannot account for the surface structures created by annealing in the presence of an applied electric field at 1500 °C. The effect of electric field direction and strength on the surface morphology are investigated and comparisons are drawn with step-bunching on Si(111)..

Curriculum Vitae
Dr. Cormac ó Coileáin received his bachelor, master and PhD degree from Trinity college, Queen’s University Belfast, and Trinity College Dublin, respectively. He is now the postdoc research fellow in Trinity College Dublin and King Saud University.  Despite beginning in Theoretical Physics, he has become an avid and flexible experimentalist with particular interests in surface science and nanotechnology, with extensive experience in ultra-high vacuum design and characterisation.  Since my initial work during his PhD, the dynamics of step flow and step bunching, particularly on silicon has been a long standing topic interest.  He has published more than 20 scientific research articles in peer reviewed international high impact journals.


聯系方式:物理學院辦公室 (68913163)
邀 請 人:吳漢春 研究員

網    址:http://physics.bit.edu.cn/

 


百家乐永利娱乐场| 百家乐l23| 百家乐官网事电影| 蓝盾百家乐官网赌城| 大发888游戏备用网址| 真博百家乐官网的玩法技巧和规则| 大发888游戏平台hplsj| 百家乐如何投注| 百家乐官网代理加盟| 马鞍山市| 破战百家乐的玩法技巧和规则| 百家乐官方网站| 百家乐官网星级游戏| 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 | 威尼斯人娱乐城游戏| 七胜百家乐官网赌场娱乐网规则 | 宝博娱乐城开户| 盐城百家乐官网的玩法技巧和规则| 新葡京娱乐城开户| 威尼斯人娱乐城骗子| 网上玩百家乐犯法| 新时代百家乐官网娱乐城| 博狗娱乐城| 水果机游戏机| 塑料百家乐官网筹码| 加多宝百家乐的玩法技巧和规则| 做生意的摆件| 百家乐官网澳门赌| 网上百家乐官网娱乐场| 威尼斯人娱乐场 澳门赌场| 百家乐水晶筹码| 乐天百家乐官网的玩法技巧和规则 | 新花园百家乐官网的玩法技巧和规则| 百家乐官网视频麻将游戏| 新加坡百家乐的玩法技巧和规则 | 威尼斯人娱乐城赌球| 百家乐智能软件| 百家乐的方法和公式| 五张百家乐官网的玩法技巧和规则 | 全讯网直播| 罗马百家乐的玩法技巧和规则|