Silicon‐Lattice‐Matched Boron‐Doped Gallium Phosphide: A Scalable Acousto‐Optic Platform

Author:

Yama Nicholas S.1ORCID,Chen I‐Tung1,Chakravarthi Srivatsa2,Li Bingzhao1,Pederson Christian2,Matthews Bethany E.3,Spurgeon Steven R.23,Perea Daniel E.4,Wirth Mark G.4,Sushko Peter V.5,Li Mo12,Fu Kai‐Mei C.126

Affiliation:

1. Electrical and Computer Engineering Department University of Washington Seattle WA 98105 USA

2. Physics Department University of Washington Seattle WA 98105 USA

3. Energy and Environment Directorate Pacific Northwest National Laboratory Richland Washington 99352 USA

4. Earth and Biological Sciences Directorate Environmental Molecular Sciences Laboratory Pacific Northwest National Laboratory Richland Washington 99352 USA

5. Physical and Computational Sciences Directorate Pacific Northwest National Laboratory Richland Washington 99352 USA

6. Physical Sciences Division Pacific Northwest National Laboratory Richland Washington 99352 USA

Abstract

AbstractThe compact size, scalability, and strongly confined fields in integrated photonic devices enable new functionalities in photonic networking and information processing, both classical and quantum. Gallium phosphide (GaP) is a promising material for active integrated photonics due to its high refractive index, wide bandgap, strong nonlinear properties, and large acousto‐optic figure of merit. This study demonstrates that silicon‐lattice‐matched boron‐doped GaP (BGaP), grown at the 12‐inch wafer scale, provides similar functionalities as GaP. BGaP optical resonators exhibit intrinsic quality factors exceeding 25,000 and 200,000 at visible and telecom wavelengths, respectively. It further demonstrates the electromechanical generation of low‐loss acoustic waves and an integrated acousto‐optic (AO) modulator. High‐resolution spatial and compositional mapping, combined with ab initio calculations, indicate two candidates for the excess optical loss in the visible band: the silicon‐GaP interface and boron dimers. These results demonstrate the promise of the BGaP material platform for the development of scalable AO technologies at telecom and provide potential pathways toward higher performance at shorter wavelengths.

Funder

Pacific Northwest National Laboratory

Battelle

National Energy Research Scientific Computing Center

National Science Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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