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Showing 1 to 4 of 4 for “"anisotropic nanocrystals"”.

  1. Design and Development of 2d Functional Semiconductor Nanocrystals

    <p>Anisotropic nanocrystals (NCs) have become of keen interest in recent years, especially for applications in optoelectronic devices due to their directionally oriented emissions, narrow emission spectra, and suitable morphologies for device integration. Of the desired anisotropic NCs, …

    syracuse-diss Repository record for Design and Development of 2d Functional Semiconductor Nanocrystals (opens in a new tab)

  2. Polymer- and Bioadditives-Assisted Synthesis and Surface Modification of Anisotropic Gold Nanocrystals

    … the reproducible and scalable syntheses of small anisotropic nanocrystals in high yield utilizing a polymer and small thiolated compounds as shape-directing agents during growth, which enhance the long-term shape stability and colloidal stability after functionalization. Chapter 1 is a literature …

    rice Repository record for Polymer- and Bioadditives-Assisted Synthesis and Surface Modification of Anisotropic Gold Nanocrystals (opens in a new tab)

  3. Continuous flow platforms for the synthesis of high-quality semiconductor nanocrystals

    Semiconductor nanocrystals are of great interest due to their unique optical and electronic properties that are intermediate between bulk semiconductors and molecules. These nanoparticles find use in various applications ranging from electronics (light emitting diodes, photovoltaics) to …

    uiuc Repository record for Continuous flow platforms for the synthesis of high-quality semiconductor nanocrystals (opens in a new tab)

  4. Quantitative Theories of Nanocrystal Growth Processes

    Nanocrystals are an important field of study in the 21st century. Crystallites that are nanometers in size have very different properties from their bulk analogs because quantum mechanical effects become dominant at such small length scales. When a crystallite becomes small enough, the quantum …

    columbia-diss Repository record for Quantitative Theories of Nanocrystal Growth Processes (opens in a new tab)