Conducting Al and Ga-doped zinc oxides; Rapid optimisation and scale-up

16Citations
Citations of this article
37Readers
Mendeley users who have this article in their library.

Abstract

A high-throughput synthesis, screening and subsequent scale-up approach was utilised for the optimisation of conductive aluminium and gallium-doped zinc oxide (AZO and GZO, respectively) nanoparticles. AZO and GZO nanoparticles with up to 6 at% dopant (with respect to Zn) were directly synthesised using a laboratory scale continuous hydrothermal process at a rate of 60 g per hour. The resistivities were determined by Hall effect measurements on pressed, heat-treated discs. Both Al- and Ga-doping yielded resistivities of the order of 1 × 10-2 Ω cm for most samples; the lowest resistivity of AZO was 7.0 × 10-3 Ω cm (at 2.5 at% Al doping), and the lowest resistivity of GZO was 9.1 × 10-3 Ω cm (at 3.5 at% Ga doping), which are considered exceptionally conductive for pressed nanopowders. Synthesis of the optimised lab-scale compositions was scaled-up using a pilot-scale continuous hydrothermal process at a production rate of 8 kg per day (by dry mass); results obtained from these nanopowders generally retained resistivity trends observed for the lab-scale analogues.

Cite

CITATION STYLE

APA

Howard, D. P., Marchand, P., Johnson, I. D., Carmalt, C. J., Parkin, I. P., & Darr, J. A. (2016). Conducting Al and Ga-doped zinc oxides; Rapid optimisation and scale-up. Journal of Materials Chemistry A, 4(33), 12774–12780. https://doi.org/10.1039/c6ta03364d

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free