Literature DB >> 28508649

Colloidal Synthesis of Te-Doped Bi Nanoparticles: Low-Temperature Charge Transport and Thermoelectric Properties.

Da Hwi Gu1, Seungki Jo1, Hyewon Jeong1, Hyeong Woo Ban1, Sung Hoon Park1, Seung Hwae Heo1, Fredrick Kim1, Jeong In Jang2, Ji Eun Lee2, Jae Sung Son1.   

Abstract

Electronically doped nanoparticles formed by incorporation of impurities have been of great interest because of their controllable electrical properties. However, the development of a strategy for n-type or p-type doping on sub-10 nm-sized nanoparticles under the quantum confinement regime is very challenging using conventional processes, owing to the difficulty in synthesis. Herein, we report the colloidal chemical synthesis of sub-10 nm-sized tellurium (Te)-doped Bismuth (Bi) nanoparticles with precisely controlled Te content from 0 to 5% and systematically investigate their low-temperature charge transport and thermoelectric properties. Microstructural characterization of nanoparticles demonstrates that Te ions are successfully incorporated into Bi nanoparticles rather than remaining on the nanoparticle surfaces. Low-temperature Hall measurement results of the hot-pressed Te-doped Bi-nanostructured materials, with grain sizes ranging from 30 to 60 nm, show that the charge transport properties are governed by the doping content and the related impurity and nanoscale grain boundary scatterings. Furthermore, the low-temperature thermoelectric properties reveal that the electrical conductivity and Seebeck coefficient expectedly change with the Te content, whereas the thermal conductivity is significantly reduced by Te doping because of phonon scattering at the sites arising from impurities and nanoscale grain boundaries. Accordingly, the 1% Te-doped Bi sample exhibits a higher figure-of-merit ZT by ∼10% than that of the undoped sample. The synthetic strategy demonstrated in this study offers the possibility of electronic doping of various quantum-confined nanoparticles for diverse applications.

Entities:  

Keywords:  bismuth; charge carrier transport; colloidal synthesis; doped nanoparticles; thermoelectric properties

Year:  2017        PMID: 28508649     DOI: 10.1021/acsami.7b04404

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  1 in total

1.  Cu2Se-based thermoelectric cellular architectures for efficient and durable power generation.

Authors:  Seungjun Choo; Faizan Ejaz; Hyejin Ju; Fredrick Kim; Jungsoo Lee; Seong Eun Yang; Gyeonghun Kim; Hangeul Kim; Seungki Jo; Seongheon Baek; Soyoung Cho; Keonkuk Kim; Ju-Young Kim; Sangjoon Ahn; Han Gi Chae; Beomjin Kwon; Jae Sung Son
Journal:  Nat Commun       Date:  2021-06-10       Impact factor: 14.919

  1 in total

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