您的位置: 专家智库 > >

国家自然科学基金(11272232)

作品数:4 被引量:25H指数:3
相关作者:亢一澜黄干云高頔雷振坤仇巍更多>>
相关机构:大连理工大学天津大学更多>>
发文基金:国家自然科学基金国家重点基础研究发展计划更多>>
相关领域:理学更多>>

文献类型

  • 3篇中文期刊文章

领域

  • 3篇理学

主题

  • 1篇动力学理论
  • 1篇纳米
  • 1篇纳米制造技术
  • 1篇拉曼
  • 1篇拉曼光谱
  • 1篇拉曼光谱仪
  • 1篇光谱
  • 1篇PANI
  • 1篇RAMAN_...
  • 1篇RESIDU...
  • 1篇SILICO...
  • 1篇AU
  • 1篇DEGRAD...
  • 1篇MAGNET...
  • 1篇MRS
  • 1篇FE3O4
  • 1篇MULTI-...
  • 1篇4-NITR...
  • 1篇GERMAN...
  • 1篇NANOMA...

传媒

  • 1篇Acta M...
  • 1篇Scienc...
  • 1篇Scienc...

年份

  • 1篇2017
  • 1篇2016
  • 1篇2014
4 条 记 录,以下是 1-3
排序方式:
Mechanical behavior study of microdevice and nanomaterials by Raman spectroscopy:a review被引量:10
2014年
With the rapid development of micro/nano manufacturing technology and nanomaterials,the accurate measurement of the mechanical properties and behaviors at the micro-nano scale represents a new field of mechanical experiments.Raman spectroscopy,which is based on lattice dynamics theory,is applicable to the detection of the statistical information of the lattice structure deformation within the measuring points.Due to its peculiarities,such as non-destructiveness,convenience and high-resolution,this technology allows the on-line in situ measurement of residual stress in microstructures caused by processing and can also achieve the real-time deformation of graphene,carbon nanotubes and other nanomaterials under force loading.In recent years,mechanical measurements based on Raman spectroscopy technology have developed rapidly.In this review,Raman-based stress measurement theories for several commonly used materials are briefly described.Applications related to the residual stress measurements of microstructure and experimental investigations of the mechanical properties of low-dimensional nanomaterials are then reviewed.Finally,the development trend of this method is proposed.
Wei QiuYi-Lan Kang
关键词:拉曼光谱仪动力学理论纳米制造技术
Ternary Fe3O4@PANI@Au nanocomposites as a magnetic catalyst for degradation of organic dyes被引量:1
2017年
Magnetic Fe_3O_4@PANI@Au nanocomposites are fabricated through electrostatic self-assembly and seed growth methods.The rate constant K_(app) is calculated to be 8.63×10^(-3) s^(-1) at room temperature for the reduction of 4-nitrophenol to 4-aminophenol with an excessive amount of NaBH_4 as a model system showing outstanding catalytic efficiency and stability.For recyclable performance,the catalyst exhibits slight loss in catalytic performance on the conversion of 4-nitrophenol after running for more than 10 cycles.Besides,the smaller and simpler the structure,the easier the molecular structure can be degraded,and the faster the cationic dyes can be degraded than the anionic dyes,which can reveal the selectivity.For practical application,Congo red as a pollutant of the lake water is degraded rapidly after Fe_3O_4@PANI@Au is added to the solution in a few minutes.It has been demonstrated that magnetic Fe_3O_4@PANI@Au nanoparticle composite is a promising catalyst for environment sewage.
ZHU YuMeiZHOU XiaoWeiCHEN DongShengLI FangXUE TaoAhmed Saad FARAG
关键词:MAGNETICDEGRADATION4-NITROPHENOL
Measurement of residual stress in a multi-layer semiconductor heterostructure by micro-Raman spectroscopy被引量:15
2016年
Si-based multilayer structures are widely used in current microelectronics. During their preparation, some inhomogeneous residual stress is induced, resulting in competition between interface mismatching and surface energy and even leading to structure failure. This work presents a methodological study on the measurement of residual stress in a multi-layer semiconductor heterostructure. Scanning electron microscopy(SEM), micro-Raman spectroscopy(MRS), and transmission electron microscopy(TEM) were applied to measure the geometric parameters of the multilayer structure. The relationship between the Raman spectrum and the stress/strain on the [100] and [110] crystal orientations was determined to enable surface and crosssection residual stress analyses, respectively. Based on the Raman mapping results, the distribution of residual stress along the depth of the multi-layer heterostructure was successfully obtained.
Wei QiuCui-Li ChengRen-Rong LiangChun-Wang ZhaoZhen-Kun LeiYu-Cheng ZhaoLu-Lu MaJun XuHua-Jun FangYi-Lan Kang
共1页<1>
聚类工具0