Micrometer-thick, atomically random Si0.06Ge0.90Sn0.04 for silicon-integrated infrared optoelectronics

Author:

Assali S.1ORCID,Attiaoui A.1ORCID,Koelling S.1ORCID,Atalla M. R. M.1,Kumar A.1,Nicolas J.1ORCID,Chowdhury F. A.1,Lemieux-Leduc C.1,Moutanabbir O.1ORCID

Affiliation:

1. Department of Engineering Physics, École Polytechnique de Montréal, C. P. 6079, Succ. Centre-Ville, Montréal, Québec H3C 3A7, Canada

Abstract

A true monolithic infrared photonics platform is within reach if strain and bandgap energy can be independently engineered in SiGeSn semiconductors. Herein, we investigate the structural and optoelectronic properties of a 1.5  μm-thick Si0.06Ge0.90Sn0.04 layer that is nearly lattice-matched to a Ge on Si substrate. Atomic-level studies demonstrate high crystalline quality and uniform composition and show no sign of short-range ordering and clusters. Room-temperature spectroscopic ellipsometry and transmission measurements show direct bandgap absorption at 0.83 eV and a reduced indirect bandgap absorption at lower energies. Si0.06Ge0.90Sn0.04 photoconductive devices operating at room temperature exhibit dark current and spectral responsivity (1 A/W below 1.5  μm wavelengths) similar to Ge on Si devices, with the advantage of a near-infrared bandgap tunable by alloy composition. These results underline the relevance of SiGeSn semiconductors in implementing a group IV material platform for silicon-integrated infrared optoelectronics.

Funder

Natural Sciences and Engineering Research Council of Canada

Canada Research Chairs

Canada Foundation for Innovation

Mitacs

PRIMA Quebec

Defence Canada

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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