• Journal of Inorganic Materials
  • Vol. 36, Issue 5, 502 (2021)
Hongmei JIANG, Wenya ZHAO, Ruijing FU, and Guanjun XIAO*
Author Affiliations
  • State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Changchun 130012, China
  • show less
    DOI: 10.15541/jim20200383 Cite this Article
    Hongmei JIANG, Wenya ZHAO, Ruijing FU, Guanjun XIAO. Pressure-resistance of Magic-sized Cadmium Selenide Nanocrystals[J]. Journal of Inorganic Materials, 2021, 36(5): 502 Copy Citation Text show less
    References

    [1] S KUDERA, M ZANELLA, C GIANNINI et al. Sequential growth of magic-size CdSe nanocrystals. Advanced Materials, 19, 548-552(2007).

    [2] K YU, J Y OUYANG, M B ZAMAN et al. Single-sized CdSe nanocrystals with bandgap photoemission via a noninjection one-pot approach. The Journal of Physical Chemistry C, 113, 3390-3401(2009).

    [3] J Y OUYANG, M B ZAMAN, F J YAN et al. Multiple families of magic-sized CdSe nanocrystals with strong bandgap photoluminescence via noninjection one-pot syntheses. The Journal of Physical Chemistry C, 112, 13805-13811(2008).

    [4] M J BOWERS, J R MCBRIDE, S J ROSENTHAl. White-light emission from magic-sized cadmium selenide nanocrystals. Journal of the American Chemical Society, 127, 15378-15379(2005).

    [5] P DAGTEPE, V CHIKAN, J JASINSKI et al. Quantized growth of CdTe quantum dots; observation of magic-sized CdTe quantum dots. The Journal of Physical Chemistry C, 111, 14977-14983(2007).

    [6] A D DUKES, J R MCBRIDE, S J ROSENTHAL. Synthesis of magic-sized CdSe and CdTe nanocrystals with diisooctylphosphinic acid. Chemistry of Materials, 22, 6402-6408(2010).

    [7] M LI, J OUYANG, C I RATCIFFE et al. CdS magic-sized nanocrystals exhibiting bright band gap photoemission via thermodynamically driven formation. ACS Nano, 3, 3832-3838(2009).

    [8] D GAO, X Y HAO, N ROWELL et al. Formation of colloidal alloy semiconductor CdTeSe magic-size clusters at room temperature. Nature Communications, 10, 1674(2019).

    [9] J W YANG, F MUCKEL, W BAEK et al. Chemical synthesis, doping, and transformation of magic-sized semiconductor alloy nanoclusters. Journal of the American Chemical Society, 139, 6761-6770(2017).

    [10] M CHEN, C R LUAN, M ZHANG et al. Evolution of CdTe magic-size clusters with single absorption. The Journal of Physical Chemistry Letters, 11, 2230-2240(2020).

    [11] G J XIAO, Y N WANG, D HAN et al. Pressure-induced large emission enhancements of cadmium selenide nanocrystals. Journal of the American Chemical Society, 140, 13970-13975(2018).

    [12] P F LV, S R YANG, C LIU et al. Pressure-induced emission enhancements and ripening of zinc blende cadmium selenide nanocrystals. The Journal of Physical Chemistry C, 123, 15339-15344(2019).

    [13] S H TOLBERT, A P ALIVISATOS. The wurtzite to rock salt structural transformation in CdSe nanocrystals under high pressure. The Journal of Chemical Physics, 102, 4642-4656(1995).

    [14] Y SHI, Z W MA, D L ZHAO et al. Pressure-induced emission (PIE) of one-dimensional organic tin bromide perovskites. Journal of the American Chemical Society, 141, 6504-6508(2019).

    [15] Z W MA, Z LIU, S Y LU et al. Pressure-induced emission of cesium lead halide perovskite nanocrystals. Nature Communications, 9, 4506(2018).

    [16] L WANG, W G YANG, Y DING et al. Size-dependent amorphization of nanoscale Y2O3 at high pressure. Phys. Rev. Lett., 105, 095701(2010).

    [17] Z W QUAN, Y X WANG, I T BAE et al. Reversal of Hall-Petch effect in structural stability of PbTe nanocrystals and associated variation of phase transformation. Nano Letters, 11, 5531-5536(2011).

    [18] Z W QUAN, Z P LUO, Y X WANG et al. Pressure-induced switching between amorphization and crystallization in PbTe nanoparticles. Nano Letters, 13, 3729-3735(2013).

    [19] A LYASHCHOVA, A DMYTRUK, I DMITRUK et al. Optical absorption, induced bleaching, and photoluminescence of CdSe nanoplatelets grown in cadmium octanoate matrix. Nanoscale Research Letters, 9, 88(2014).

    [20] M NIRMAL, D J NORRIS, M KUNO et al. Observation of the “dark exciton” in CdSe quantum dots. Physical Review Letter, 75, 3728-3731(1995).

    [21] D J NORRIS, A L EFROS, M ROSEN. Size dependence of exciton fine structure in CdSe quantum dots. Physical Review B, 53, 16347-16354(1996).

    [22] D J NORRIS, M G BAWENDI. Measurement and assignment of the size-dependent optical spectrum in CdSe quantum dots. Physical Review B, 53, 16338-16346(1996).

    [23] D R NEVERS, C B WILLIAMSON, B H SAVITZKY et al. Mesophase formation stabilizes high-purity magic-sized clusters. Journal of the American Chemical Society, 140, 3652-3662(2018).

    [24] E GROENEVELD, BERKUM S VAN, A MEIJERINK et al. Growth and stability of ZnTe magic-size nanocrystals. Small, 7, 1247-1256(2011).

    [25] X M LIU, Y JIANG, C WANG et al. White-light-emitting CdSe quantum dots with “magic size” via one-pot synthesis approach. Physica Status Solidi (A), 207, 2472-2477(2010).

    [26] A L EFROS, M ROSEN, M KUNO et al. Band-edge exciton in quantum dots of semiconductors with a degenerate valence band: dark and bright exciton states. Physical Review B, 54, 4843-4856(1996).

    [27] F S RIEHLE, R BIENERT, R THOMANN et al. Blue luminescence and superstructures from magic size clusters of CdSe. Nano Letters, 9, 514-518(2009).

    Hongmei JIANG, Wenya ZHAO, Ruijing FU, Guanjun XIAO. Pressure-resistance of Magic-sized Cadmium Selenide Nanocrystals[J]. Journal of Inorganic Materials, 2021, 36(5): 502
    Download Citation