Literature DB >> 12783559

From 1D chain to 3D network: tuning hybrid II-VI nanostructures and their optical properties.

Xiaoying Huang1, Jing Li, Yong Zhang, Angelo Mascarenhas.   

Abstract

In an effort to make semiconductor nanomaterials with tunable properties, we have deliberately designed and synthesized a family of novel organic-inorganic hybrid nanocomposites based on II-VI semiconductors with structures ranging from one-dimensional (1-D) chain to two-dimensional layer (2-D) to three-dimensional (3-D) framework. All nanostructures exhibit strong quantum confinement effect (QCE), while possessing a perfectly periodic arrangement. The optical absorption experiments show that all compounds generate a very large blue shift in the absorption edge (1.0-2.0 eV) due to the strong QCE. More significantly, their band edge shift and optical properties can be tuned by changing the dimensionality of inorganic motifs as well as overall crystal structures. Raman studies reveal that not only do these structures have distinctly different vibrational signatures from those of the II-VI host semiconductors, but they also differ significantly from each other as a result of changes in dimensionality. The crystal structures of these nanocomposite materials have been characterized by single crystal and/or powder X-ray diffraction methods. [ZnTe(pda)] (1; pda = propanediamine) is composed of 1-D chains of [ZnTe] with pda chelating to Zn atoms. [ZnTe(N(2)H(4))] (2; N(2)H(4) = hydrazine) and [ZnTe(ma)] (3; ma = MeNH(2) = methylamine) are two-dimensional (2-D) layered structures containing [ZnTe] slabs and terminal hydrazine (2) or methylamine (3) molecules. The crystal structures of [CdSe(en)(0.5)] (4; en = ethylenediamine) and [CdSe(pda)(0.5)] (5) are 3-D networks containing [CdSe] slabs bridged by bidentate organic diamine molecules. Crystal data for 1: Orthorhombic, space group Pbcm, a = 9.997(2), b = 6.997(1), c = 10.332(2) A, Z = 4. For 2: Monoclinic, space group P2(1), a = 4.2222(6), b = 6.9057(9), c = 7.3031(10) A, beta = 98.92(8) degrees, Z = 2. For 3: Orthorhombic, Pbca, a = 7.179(1), b = 6.946(1), c = 18.913(4) A, Z = 8. For 4: Orthorhombic, Pbca, a = 7.0949(3), b = 6.795(3), c = 16.7212(8) A, Z = 8. For 5: Orthorhombic, Cmc2(1), a = 20.6660(12), b = 6.8900(4), c = 6.7513(4) A, Z = 8.

Entities:  

Year:  2003        PMID: 12783559     DOI: 10.1021/ja0343611

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

1.  Binding graphene sheets together using silicon: graphene/silicon superlattice.

Authors:  Yong Zhang; Raphael Tsu
Journal:  Nanoscale Res Lett       Date:  2010-02-13       Impact factor: 4.703

2.  Highly efficient and very robust blue-excitable yellow phosphors built on multiple-stranded one-dimensional inorganic-organic hybrid chains.

Authors:  Yang Fang; Christopher A Sojdak; Gangotri Dey; Simon J Teat; Mingxing Li; Mircea Cotlet; Kun Zhu; Wei Liu; Lu Wang; Deirdre M ÓCarroll; Jing Li
Journal:  Chem Sci       Date:  2019-04-17       Impact factor: 9.825

3.  A first-principles study of electronic and optical properties of the tetragonal phase of monolayer ZnS modulated by biaxial strain.

Authors:  Bin Liu; Wan-Sheng Su; Bi-Ru Wu
Journal:  RSC Adv       Date:  2022-02-21       Impact factor: 3.361

4.  Hydrazine-solvothermal methods to synthesize polymeric thioarsenates from one-dimensional chains to a three-dimensional framework.

Authors:  Jingyu Han; Shufen Li; Chunying Tang; Wei Zheng; Wenqing Jiang; Dingxian Jia
Journal:  RSC Adv       Date:  2018-10-04       Impact factor: 4.036

5.  Morphology Transition Engineering of ZnO Nanorods to Nanoplatelets Grafted Mo8O23-MoO2 by Polyoxometalates: Mechanism and Possible Applicability to other Oxides.

Authors:  Ahmed H Abdelmohsen; Waleed M A El Rouby; Nahla Ismail; Ahmed A Farghali
Journal:  Sci Rep       Date:  2017-07-19       Impact factor: 4.379

  5 in total

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