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具有高度(220)取向垂直纳米孪晶异质结构铜薄膜的强化机制研究
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作者 韦小丁 张鹏 +3 位作者 马瑜薇 刘俊杰 於中良 丛超男 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2024年第1期44-53,共10页
在本工作中,我们通过直流电沉积方法制备了含有不同体积比的(220)取向垂直纳米孪晶异质结构的铜薄膜,并表征了其力学性能.单轴拉伸测试表明,当垂直纳米孪晶的体积比增加时,机械性能显著提高:具有88%垂直孪晶的薄膜的极限拉伸强度为455 M... 在本工作中,我们通过直流电沉积方法制备了含有不同体积比的(220)取向垂直纳米孪晶异质结构的铜薄膜,并表征了其力学性能.单轴拉伸测试表明,当垂直纳米孪晶的体积比增加时,机械性能显著提高:具有88%垂直孪晶的薄膜的极限拉伸强度为455 MPa,约比等轴晶粒铜薄膜的强度高83%.通过对拉伸后样品进行高分辨电子显微镜表征,并辅以分子动力学模拟,我们揭示了含有等轴晶粒和垂直纳米孪晶的特殊异质结构有助于激活铜薄膜材料内部多种模式的滑移系统,并导致更高的位错密度,从而在赋予材料更强的机械强度和加工硬化率的同时,不会显著损失材料的韧性. 展开更多
关键词 纳米孪晶 高分辨电子显微镜 极限拉伸强度 异质结构 铜薄膜 等轴晶粒 滑移系统 强化机制
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Ultrafast growth of wafer-scale fold-free bilayer graphene
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作者 Jilin Tang Yuechen Wang +17 位作者 Yuwei Ma Xiaoyin Gao Xin Gao Ning Li Yani Wang Shishu Zhang Liming Zheng Bing Deng Rui Yan Yisen Cao Ronghua Zhang Lianming Tong Jin Zhang Peng Gao Zhongfan Liu xiaoding wei Hongtao Liu Hailin Peng 《Nano Research》 SCIE EI CSCD 2023年第7期10684-10689,共6页
Bilayer graphene provides a versatile platform for exploring a variety of intriguing phenomena and shows much promise for applications in electronics,optoelectronics,etc.Controlled growth of large-area bilayer graphen... Bilayer graphene provides a versatile platform for exploring a variety of intriguing phenomena and shows much promise for applications in electronics,optoelectronics,etc.Controlled growth of large-area bilayer graphene is therefore highly desired yet still suffers from a slow growth rate and poor layer uniformity.Meanwhile,graphene wrinkles,including folds and ripples,form during cooling due to the thermal contraction mismatch between graphene and the metal substrates,and have been far from suppressed or eliminated,especially in bilayer graphene,which would greatly degrade the extraordinary properties of graphene.Here we report the ultrafast growth of wafer-scale fold-free bilayer graphene by chemical vapor deposition.Through well-tuning the alloy thickness and strain regulation of the single-crystal CuNi(111)/sapphire,the full coverage of a 2-inch fold-free bilayer graphene wafer via mainly isothermal segregation has been achieved as fast as 30 s.The tensile-strained CuNi(111)film reduces the thermal contraction mismatch and suppresses the formation of graphene folds during cooling,which is directly observed through in situ optical microscopy.The ultraflat bilayer graphene exhibits wafer-scale uniformity in electrical performance and enhanced mechanical property comparable to the exfoliated ones.Our results offer a promising route for largescale production of bilayer graphene and enable its various applications. 展开更多
关键词 bilayer graphene graphene wrinkles ultrafast growth in situ optical microscopy single crystal wafer
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