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本文引用的文献

1
Rational growth of branched nanowire heterostructures with synthetically encoded properties and function.具有合成编码性质和功能的支化纳米线异质结构的合理生长。
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Three-dimensional, flexible nanoscale field-effect transistors as localized bioprobes.三维、柔性纳米尺度场效应晶体管作为局域生物探针。
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Nanowire transistor arrays for mapping neural circuits in acute brain slices.用于在急性脑切片中绘制神经回路的纳米线晶体管阵列。
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Single-crystalline kinked semiconductor nanowire superstructures.单晶体扭折半导体纳米线超结构。
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Coaxial group III-nitride nanowire photovoltaics.同轴III族氮化物纳米线光伏器件
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7
Flexible electrical recording from cells using nanowire transistor arrays.使用纳米线晶体管阵列对细胞进行柔性电记录。
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Tetherless thermobiochemically actuated microgrippers.无线热生物化学驱动的微夹钳
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用于光伏和细胞内探针的新型纳米线结构的设计、合成与表征。

Design, synthesis, and characterization of novel nanowire structures for photovoltaics and intracellular probes.

作者信息

Tian Bozhi, Lieber Charles M

机构信息

David H. Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Pure Appl Chem. 2011 Jan 1;83(12):2153-2169. doi: 10.1351/PAC-CON-11-08-25. Epub 2011 Oct 31.

DOI:10.1351/PAC-CON-11-08-25
PMID:22707797
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3374661/
Abstract

Semiconductor nanowires (NWs) represent a unique system for exploring phenomena at the nanoscale and are expected to play a critical role in future electronic, optoelectronic, and miniaturized biomedical devices. Modulation of the composition and geometry of nanostructures during growth could encode information or function, and realize novel applications beyond the conventional lithographical limits. This review focuses on the fundamental science aspects of the bottom-up paradigm, which are synthesis and physical property characterization of semiconductor NWs and NW heterostructures, as well as proof-of-concept device concept demonstrations, including solar energy conversion and intracellular probes. A new NW materials synthesis is discussed and, in particular, a new "nanotectonic" approach is introduced that provides iterative control over the NW nucleation and growth for constructing 2D kinked NW superstructures. The use of radial and axial p-type/intrinsic/n-type (p-i-n) silicon NW (Si-NW) building blocks for solar cells and nanoscale power source applications is then discussed. The critical benefits of such structures and recent results are described and critically analyzed, together with some of the diverse challenges and opportunities in the near future. Finally, results are presented on several new directions, which have recently been exploited in interfacing biological systems with NW devices.

摘要

半导体纳米线(NWs)是探索纳米尺度现象的独特体系,有望在未来的电子、光电子和小型化生物医学设备中发挥关键作用。在生长过程中对纳米结构的组成和几何形状进行调制可以编码信息或功能,并实现超越传统光刻限制的新应用。本综述聚焦于自下而上范式的基础科学方面,包括半导体纳米线和纳米线异质结构的合成与物理性质表征,以及概念验证器件概念演示,包括太阳能转换和细胞内探针。讨论了一种新的纳米线材料合成方法,特别是引入了一种新的“纳米构造”方法,该方法可对纳米线的成核和生长进行迭代控制,以构建二维扭结纳米线超结构。接着讨论了径向和轴向p型/本征/n型(p-i-n)硅纳米线(Si-NW)构建块在太阳能电池和纳米级电源应用中的使用。描述并批判性地分析了此类结构的关键优势和近期成果,以及近期一些不同的挑战和机遇。最后,展示了几个新方向的成果,这些方向最近已被用于将生物系统与纳米线器件相连接。