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

Superlattice Alloy with Disordered Interfacial Nanolayers

Superlattice alloys have an atomically close-packed and ordered structure. The strong chemical binding and low atomic mobility make them very attractive to high-temperature structural applications in a range of engineering fields such as aerospace, automotive, gas turbine engine, and many other industries. However, the highly ordered crystalline structure makes them brittle. The research team led by Professor Liu has discovered a new approach via fabricating multicomponent superlattice alloys with disordered interfacial nanolayers to resolve this dilemma. The findings have been published in the prestigious scientific journal Science under the title “Ultra high-strength and ductile superlattice alloys with nanoscale disordered interfaces” [1].

According to conventional wisdom, adding trace amounts (0.1 to 0.5 atomic percent (at. %)) of boron substantially improves tensile ductility by increasing grain-boundary cohesion, but when more than 0.5 at. % of boron were added, this traditional approach would not work well. However, the team came up with the idea to add excessive amounts of boron to the multi-component alloys, and the results were to their surprise. By increasing the boron concentration to 2.5 at. %, the synthesized alloy has an ultra-thin disordered interfacial nanolayer along the grain boundary. The ultra-thin layer contains multiple principal elements with disordered atomic structures that prevent brittle intergranular fractures. The general structure of superlattice alloys is made of individual crystalline areas known as “grains”. The brittleness in these alloys is generally ascribed to cracking along their grain boundaries during tensile deformation. Such superlattice materials have ultra-high strengths of 1.6 gigapascals with tensile ductilities of 25% at room temperature, which makes them a lot more ductile than expected.

In addition, the team also discovered that the increase in grain size was negligible even after 120 hours of heating at temperatures of 1050°C. Most traditional structural materials suffer from thermally driven structural instability because of rapid grain growth at high temperatures. As a result, the strength of these materials decreases quickly, severely limiting their applications. We believe that the nanolayer is pivotal in suppressing growth in grain size and maintaining its strength at high temperatures. The thermal stability of the disordered nanolayer will render this type of alloy suitable for high-temperature structural applications.

The discovery of this disordered nanolayer along the grain boundaries in the alloy will positively impact the development of high-strength materials in the future and may open a pathway for further optimization of alloy properties.

The ultra-thin disordered layer at the grain boundaries is about 5 nm thick [1].

Reference 

1. Yang, T, Zhao, YL, Li, WP, Yu, CY, Luan, JH, Lin, DY, Fan, L, Jiao, ZB, Liu, WH, Liu, XJ, Kai, JJ, Huang, JC & Liu, CT 2020, 'Ultrahigh-strength and ductile superlattice alloys with nanoscale disordered interfaces', Science (New York, N.Y.), vol. 369, no. 6502, pp. 427-432.

2. Yang, T, Zhao, YL, Tong, Y, Jiao, ZB, Wei, J, Cai, JX, Han, XD, Chen, D, Hu, A, Kai, JJ, Lu, K, Liu, Y & Liu, CT 2018, 'Multicomponent intermetallic nanoparticles and superb mechanical behaviors of complex alloys', Science (New York, N.Y.), vol. 362, no. 6417, pp. 933-937.

3. Zhang, T, Huang, Z, Yang, T, Kong, H, Luan, J, Wang, A, Wang, D, Kuo, W, Wang, Y & Liu, C-T 2021, 'In situ design of advanced titanium alloy with concentration modulations by additive manufacturing', Science, vol. 374, no. 6566, pp. 478-482.

全椒县| 百家乐官网西园二手房| 青岛人家棋牌室| 百家乐官网赢多少该止赢| 北京太阳城三期| 百家乐官网PK| 大发888游戏平台 df888ylcxz46 | 互博百家乐的玩法技巧和规则| 百家乐官网赌场破解| 大发888真钱娱乐城| 百家乐官网平一直压庄| 呼和浩特市| 百家乐15人桌布| 即墨市| 大发888怎么申请账号| 百家乐官网作弊| 真钱现金斗地主| 百家乐庄闲比| 九州百家乐官网的玩法技巧和规则 | 新东方百家乐官网的玩法技巧和规则 | 大发888官方体育| 百家乐麻关于博彩投注| 百家乐官网博之道娱乐城| 总统娱乐城返水| 木棉百家乐的玩法技巧和规则| 瑞士百家乐官网的玩法技巧和规则 | 百家乐官网游戏官网| 大发888娱乐游戏下载 官方网| 金城百家乐玩法平台| 粤港澳百家乐官网赌场娱乐网规则 | 百家乐官网游戏卡通| 称多县| 大发888下载大发888游戏平台| 百家乐桌保险| 模拟百家乐官网游戏软件| 百利宫百家乐的玩法技巧和规则| 百家乐游戏合法吗| 百家乐稳赢秘笈| 坐乾向巽24山向择吉| 百家乐官网博乐城| 查看百家乐官网赌博|