Phase Separation in AlxGa1-xAs Nanowhiskers Grown by the Solution−Liquid−Solid Mechanism

Article Properties
  • Language
    English
  • DOI (url)
  • Publication Date
    2001/04/18
  • Indian UGC (journal)
  • Refrences
    62
  • Citations
    50
  • Paul D. Markowitz Contribution from the Departments of Chemistry and Physics, Washington University, St. Louis, Missouri 63130-4899, and Department of Chemistry, University of California, Irvine, Irvine, California 92679-2025
  • Michael P. Zach Contribution from the Departments of Chemistry and Physics, Washington University, St. Louis, Missouri 63130-4899, and Department of Chemistry, University of California, Irvine, Irvine, California 92679-2025
  • Patrick C. Gibbons Contribution from the Departments of Chemistry and Physics, Washington University, St. Louis, Missouri 63130-4899, and Department of Chemistry, University of California, Irvine, Irvine, California 92679-2025
  • R. M. Penner Contribution from the Departments of Chemistry and Physics, Washington University, St. Louis, Missouri 63130-4899, and Department of Chemistry, University of California, Irvine, Irvine, California 92679-2025
  • William E. Buhro Contribution from the Departments of Chemistry and Physics, Washington University, St. Louis, Missouri 63130-4899, and Department of Chemistry, University of California, Irvine, Irvine, California 92679-2025
Cite
Markowitz, Paul D., et al. “Phase Separation in AlxGa1-XAs Nanowhiskers Grown by the Solution−Liquid−Solid Mechanism”. Journal of the American Chemical Society, vol. 123, no. 19, 2001, pp. 4502-11, https://doi.org/10.1021/ja0025907.
Markowitz, P. D., Zach, M. P., Gibbons, P. C., Penner, R. M., & Buhro, W. E. (2001). Phase Separation in AlxGa1-xAs Nanowhiskers Grown by the Solution−Liquid−Solid Mechanism. Journal of the American Chemical Society, 123(19), 4502-4511. https://doi.org/10.1021/ja0025907
Markowitz PD, Zach MP, Gibbons PC, Penner RM, Buhro WE. Phase Separation in AlxGa1-xAs Nanowhiskers Grown by the Solution−Liquid−Solid Mechanism. Journal of the American Chemical Society. 2001;123(19):4502-11.
Refrences
Title Journal Journal Categories Citations Publication Date
CdTe/CdS Clusters with “Core−Shell” Structure in Colloids and Films:  The Path of Formation and Thermal Breakup The Journal of Physical Chemistry B
  • Science: Chemistry: Physical and theoretical chemistry
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10.1103/PhysRevLett.84.2449 Physical Review Letters
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10.1002/(SICI)1521-4095(200002)12:4<298::AID-ADMA298>3.0.CO;2-Y Advanced Materials
  • Science: Chemistry: General. Including alchemy
  • Science: Chemistry: Physical and theoretical chemistry
  • Technology: Chemical technology
  • Science: Chemistry
  • Science: Physics
  • Science: Physics
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
2000
10.1002/(SICI)1521-4095(200001)12:2<123::AID-ADMA123>3.0.CO;2-H Advanced Materials
  • Science: Chemistry: General. Including alchemy
  • Science: Chemistry: Physical and theoretical chemistry
  • Technology: Chemical technology
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  • Science: Physics
  • Science: Physics
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
2000
Self-organized growth of alloy superlattices Nature
  • Science: Science (General)
71 1999
Citations
Title Journal Journal Categories Citations Publication Date
Influence of Source Composition on the Planar Growth of Nanowires during Catalytic Growth in a Quasi-Closed Volume Semiconductors
  • Technology: Chemical technology
  • Science: Physics
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Science: Physics
2023
Screen‐Printed Flexible Strain Sensors with Ag Nanowires for Intelligent and Tamper‐Evident Packaging Applications

Advanced Materials Technologies
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  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
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31 2020
Solution-liquid-solid growth of CuInTe2 nanowires as lithium-ion battery anodes Materials & Design
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Science: Chemistry
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
12 2018
Solution–Liquid–Solid Synthesis, Properties, and Applications of One-Dimensional Colloidal Semiconductor Nanorods and Nanowires Chemical Reviews
  • Science: Chemistry: General. Including alchemy
  • Science: Chemistry
143 2016
Solution Phase Synthesis of Indium Gallium Phosphide Alloy Nanowires ACS Nano
  • Science: Chemistry: General. Including alchemy
  • Science: Chemistry: Physical and theoretical chemistry
  • Technology: Chemical technology
  • Science: Chemistry
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
39 2015
Citations Analysis
The category Science: Chemistry 38 is the most commonly referenced area in studies that cite this article. The first research to cite this article was titled Cuprite Nanowires by Electrodeposition from Lyotropic Reverse Hexagonal Liquid Crystalline Phase and was published in 2002. The most recent citation comes from a 2023 study titled Influence of Source Composition on the Planar Growth of Nanowires during Catalytic Growth in a Quasi-Closed Volume. This article reached its peak citation in 2005, with 8 citations. It has been cited in 34 different journals, 5% of which are open access. Among related journals, the Nano Letters cited this research the most, with 4 citations. The chart below illustrates the annual citation trends for this article.
Citations used this article by year