2007
DOI: 10.1021/nl063056l
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Layer-by-Layer Assembly of Nanowires for Three-Dimensional, Multifunctional Electronics

Abstract: We report a general approach for three-dimensional (3D) multifunctional electronics based on the layer-by-layer assembly of nanowire (NW) building blocks. Using germanium/silicon (Ge/Si) core/shell NWs as a representative example, ten vertically stacked layers of multi-NW fieldeffect transistors (FETs) were fabricated. Transport measurements demonstrate that the Ge/Si NW FETs have reproducible high-performance device characteristics within a given device layer, that the FET characteristics are not affected by … Show more

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Cited by 578 publications
(563 citation statements)
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References 38 publications
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“…These observations shed light on implementation of large area arrays of NW PVs for next generation solar cells. 35 …”
Section: Resultsmentioning
confidence: 99%
“…These observations shed light on implementation of large area arrays of NW PVs for next generation solar cells. 35 …”
Section: Resultsmentioning
confidence: 99%
“…In this regard, the use of layered transferred thin films or directly grown one-or two-dimensional semiconductors is an attractive approach. 11 However, with 3D device integration, power consumption and heat dissipation need to be carefully addressed. Of particular importance is the development of a new electronic switch that can operate at significantly lower voltages (and thus power) than conventional metal oxide semiconductor field-effect transistors (MOSFETs).…”
Section: November 24 2015 C 2015 American Chemical Societymentioning
confidence: 99%
“…44 Since then, Lieber and others have demonstrated the syntheses of a wide range of NW materials, including heterostructures (Figure 4) [45][46][47] with advanced and well-defined functionalities and properties while controllably assembling them into hierarchical structures ( Figure 5) and configuring them for a wide range of applications. [48][49][50][51][52][53][54][55][56][57][58][59][60][61][62][63][64][65][66] Properties and Applications. While the material properties of carbon nanotubes are primarily governed by their chirality (and thus, their diameter), for NWs, the properties are tuned by both the diameter and the elemental composition, which adds another handle in controlling functionality.…”
Section: Nano Focusmentioning
confidence: 99%
“…Furthermore, the low processing temperatures for crystalline NWs enable multilayer stacking of high-performance electronic and sensor elements for multifunctional, 3-D integration. 54,55 Interestingly, NWs can be assembled as highly ordered arrays by contact printing on unconventional substrates, such as plastic, glass, or paper for high-performance, "printable" macroelectronics ( Figure 5). 56,57 Semiconductor NWs have also been utilized for harvesting solar, mechanical, and thermal energies.…”
Section: Nano Focusmentioning
confidence: 99%