Computationally-driven discovery of second harmonic generation in EuBa3(B3O6)3 through inversion symmetry breaking

Author:

He JingyangORCID,Alaerts Louis1ORCID,Wang Yu2,Trinquet Victor3,Yoshida Suguru2ORCID,Yennawar Hemant2,Sanni Victor1,Claes Romain3,Katzbaer Rowan2,Krysko Evan2,Sarker SaugataORCID,Schaak Raymond E.2,Rignanese Gian-Marco3,Hautier Geoffroy1,Mao Zhiqiang2,Gopalan Venkatraman2ORCID

Affiliation:

1. Dartmouth College

2. Pennsylvania State University

3. Institute of Condensed Matter and Nanosciences

Abstract

Nonlinear optical (NLO) crystals with superior properties are significant for advancing laser technologies and applications. Introducing rare earth metals to borates is a promising and effective way to modify the electronic structure of a crystal to improve its optical properties in the visible and ultraviolet range. In this work, we computationally discover inversion symmetry breaking in EuBa3(B3O6)3, which was previously identified as centric, and demonstrate noncentrosymmetry via synthesizing single crystals for the first time by the floating zone method. We determine the correct space group to be P6¯. The material has a large direct bandgap of 5.56 eV and is transparent down to 250 nm. The complete anisotropic linear and nonlinear optical properties were also investigated with a d11 of ∼0.52 pm/V for optical second harmonic generation. Further, it is Type I and Type II phase matchable. This work suggests that rare earth metal borates are an excellent crystal family for exploring future deep ultraviolet (DUV) NLO crystals. It also highlights how first principles computations combined with experiments can be used to identify noncentrosymmetric materials that have been wrongly assigned to be centrosymmetric.

Funder

National Institutes of Health

U.S. Department of Energy

National Science Foundation

Publisher

Optica Publishing Group

Subject

Electronic, Optical and Magnetic Materials

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