Strain modulation in crumpled Si nanomembranes: Light detection beyond the Si absorption limit

Author:

Katiyar Ajit K.1ORCID,Kim Beom Jin1,Lee Gwanjin2ORCID,Kim Youngjae2,Kim Justin S.1ORCID,Kim Jin Myung3,Nam SungWoo3ORCID,Lee JaeDong2ORCID,Kim Hyunmin4ORCID,Ahn Jong-Hyun1ORCID

Affiliation:

1. School of Electrical and Electronic Engineering, Yonsei University, 50 Yonsei-ro, Seoul 03722, Republic of Korea.

2. Department of Physics and Chemistry, DGIST, Daegu 42988, Republic of Korea.

3. Department of Mechanical and Aerospace Engineering, University of California, Irvine, Irvine, CA 92697, USA.

4. Department of Interdisciplinary Engineering, DGIST, Daegu 42988, Republic of Korea.

Abstract

Although Si is extensively used in micro-nano electronics, its inherent optical absorption cutoff at 1100-nm limits its photonic and optoelectronic applications in visible to partly near infrared (NIR) spectral range. Recently, strain engineering has emerged as a promising approach for extending device functionality via tuning the material properties, including change in optical bandgap. In this study, the reduction in bandgap with applied strain was used for extending the absorption limit of crystalline Si up to 1310 nm beyond its intrinsic bandgap, which was achieved by creating the crumpled structures in Si nanomembranes (NMs). The concept was used to develop a prototype NIR image sensor by organizing metal-semiconductor-metal–configured crumpled Si NM photosensing pixels in 6 × 6 array. The geometry-controlled, self-sustained strain induction in Si NMs provided an exclusive photon management with shortening of optical bandgap and enhanced photoresponse beyond the conventional Si absorption limit.

Publisher

American Association for the Advancement of Science (AAAS)

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