Large piezoelectric response and ferroelectricity in Li and V/Nb/Ta co-doped w-AlN

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Supporting Information
Date
2020-12-31
Authors
Noor-A-Alam, Mohammad
Olszewski, Oskar Zbigniew
Campanella, Humberto
Nolan, Michael
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American Chemical Society
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Abstract
Enhancement of piezoelectricity in w-AlN is desired for many devices including resonators for next-generation wireless communication systems, sensors, and vibrational energy harvesters. Based on density functional theory, we show that Li and X (X = V, Nb, and Ta) co-doping in 1Li:1X ratio transforms brittle w-AlN crystal to ductile, along with broadening the compositional freedom for significantly enhanced piezoelectric response, promising them to be good alternatives to expensive Sc. Interestingly, these co-doped w-AlN also show quite large spontaneous electric polarization (e.g., about 1 C/m2 for Li0.125X0.125Al0.75N) with the possibility of ferroelectric polarization switching, opening new possibilities in wurtzite nitrides. An increase in piezoelectric stress constant (e33) with a decrease in elastic constant (C33) results in an enhancement of piezoelectric strain constant (d33), which is desired for improving the performance of bulk acoustic wave (BAW) resonators for high-frequency radio frequency (RF) signals. Also, these co-doped w-AlN are potential lead-free piezoelectric materials for energy harvesting and sensors as they improve the longitudinal electromechanical coupling constant (K332), transverse piezoelectric strain constant (d31), and figure of merit (FOM) for power generation. However, the enhancement in K332 is not as pronounced as that in d33 because co-doping increases dielectric constant. The longitudinal acoustic wave velocity (7.09 km/s) of Li0.1875Ta0.1875Al0.625N is quite comparable to that of commercially used piezoelectric LiNbO3 or LiTaO3 in special cuts (about 5−7 km/s) despite the fact that the acoustic wave velocities, important parameters for designing resonators or sensors, decrease with co-doping or Sc concentration.
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Keywords
DFT , Piezoelectricity , Ferroelectricity , w-AlN , Nitrides , Doping , Density functional theory (DFT)
Citation
Noor-A-Alam, M., Olszewski, O. Z., Campanella, H. and Nolan, M. (2021) 'Large Piezoelectric Response and Ferroelectricity in Li and V/Nb/Ta Co-Doped w-AlN', ACS Applied Materials & Interfaces, 13(1), pp. 944-954. doi: 10.1021/acsami.0c19620
Copyright
© 2020 American Chemical Society. This document is the Accepted Manuscript version of a Published Work that appeared in final form in ACS Applied Materials and Interfaces, copyright © American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://pubs.acs.org/doi/10.1021/acsami.0c19620