| Literature DB >> 26134746 |
Yuho Min1, Gyeongbae Park2, Bongsoo Kim1, Anupam Giri2, Jie Zeng, Jong Wook Roh3, Sang Il Kim3, Kyu Hyoung Lee4, Unyong Jeong2.
Abstract
We herein demonstrate the successive epitaxial growth of Bi2Te3 and Bi2Se3 on seed nanoplates for the scalable synthesis of heterostructured nanoplates (Bi2Se3@Bi2Te3) and multishell nanoplates (Bi2Se3@Bi2Te3@Bi2Se3, Bi2Se3@Bi2Te3@Bi2Se3@Bi2Te3). The relative dimensions of the constituting layers are controllable via the molar ratios of the precursors added to the seed nanoplate solution. Reduction of the precursors produces nanoparticles that attach preferentially to the sides of the seed nanoplates. Once attached, the nanoparticles reorganize epitaxially on the seed crystal lattices to form single-crystalline core-shell nanoplates. The nanoplates, initially 100 nm wide, grew laterally to 620 nm in the multishell structure, while their thickness increased more moderately, from 5 to 20 nm. The nanoplates were pelletized into bulk samples by spark plasma sintering and their thermoelectric properties are compared. A peak thermoelectric figure of merit (ZT) ∼0.71 was obtained at 450 K for the bulk of Bi2Se3@Bi2Te3 nanoplates by simultaneous modulation of electronic and thermal transport in the presence of highly dense grain and phase boundaries.Entities:
Keywords: Bi2Se3; Bi2Te3; core−shell nanoplates; multishell nanoplates; seeded growth; thermoelectric properties; two-dimensional materials
Year: 2015 PMID: 26134746 DOI: 10.1021/nn507250r
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881