Effects of lattice distortion and amount of d electrons on the pressure-driven structural phase transition in ZnO: A comparative study of V-, Mn-, and Co-doped ZnO

Author:

Lin Chih-Ming1ORCID,Tseng Yu-Chin2,Tsai Yi-Jia1ORCID,Lin Yu-Sheng3,Jian Sheng-Rui45ORCID,Chuang Yu-Chun6ORCID,Juang Jenh-Yih2ORCID

Affiliation:

1. Department of Physics, National Tsing Hua University 1 , Hsinchu 300, Taiwan

2. Department of Electrophysics, National Yang Ming Chiao Tung University 2 , Hsinchu 300, Taiwan

3. Department of Electrical and Computer Engineering, College of Electrical and Computer Engineering, National Yang Ming Chiao Tung University 3 , Hsinchu 30050, Taiwan

4. Department of Materials Science and Engineering, I-Shou University 4 , Kaohsiung 84001, Taiwan

5. Department of Fragrance and Cosmetic Science, College of Pharmacy, Kaohsiung Medical University 5 , 100 Shi-Chuan 1st Road, Kaohsiung 80708, Taiwan

6. National Synchrotron Radiation Research Center 6 , 101 Hsin-Ann Road, Hsinchu Science Park, Hsinchu 30076, Taiwan

Abstract

The pressure-driven phase transition from fourfold würtzite (B4) to sixfold coordinated rock salt (B1) structure in ZnO, in particular in transition metal (TM) doped ones, exhibited very scattered results and remained as an outstanding issue. The in situ angle-dispersive x-ray diffraction revealed that TM doping can result in significant reduction on the onset pressure at which the pressure-driven B4-to-B1 phase transition starts to emerge, albeit the transition path appeared to be very much dependent on the doping transition metal element. Systematic comparisons on a series of V-, Mn-, and Co-doped ZnO materials indicated that, in addition to ionic sized difference-induced lattice distortion, the amount of the 3d electrons carried by the doped TM atom may also play a prominent role in the underlying mechanism of the pressure-driven phase transition. Specifically, the existence of 3d electrons may have resulted in increased screening of the Coulomb forces between the cations at increasing pressure, leading to significant softening of the c44 and c66 elastic constants, which, in turn, lowers the onset pressure in triggering the B4-to-B1 phase transition in ZnO. Our results also indicate that the initial lattice distortion induced by the ionic size difference may change the landscape of energy barrier and alter the phase transition path.

Funder

Ministry of Science and Technology, Taiwan

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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