Electrically‐Driven Light Source Embedded in a GaP Nanowaveguide for Visible‐Range Photonics on Chip

Author:

Lebedev Denis V.123ORCID,Solomonov Nikita A.1,Fedorov Vladimir V.14,Sharov Vladislav A.15,Kirilenko Demid A.5,Gritchenko Anton S.6,Melentiev Pavel N.6,Balykin Victor I.6,Shkoldin Vitaly A.17,Bogdanov Andrey A.78ORCID,Makarov Sergey V.78,Golubok Alexander O.2,Mukhin Ivan S.148

Affiliation:

1. Alferov University 8/3 Khlopina Saint Petersburg 194021 Russia

2. Institute for Analytical Instrumentation RAS 31‐33 Ivan Chernykh Saint Petersburg 198095 Russia

3. Saint Petersburg State University 7‐9 Universitetskaya Embankment Saint Petersburg 199034 Russia

4. Peter the Great Polytechnic University 29 Polytechnicheskaya Saint Petersburg 195251 Russia

5. Ioffe Institute 26 Polytechnicheskaya Saint Petersburg 194021 Russia

6. Institute of Spectroscopy RAS 5 Fizicheskaya, Troitsk Moscow 108840 Russia

7. ITMO University 49 Kronverksky Pr. Saint Petersburg 197101 Russia

8. Qingdao Innovation and Development Center Harbin Engineering University Qingdao Shandong 266000 China

Abstract

AbstractThe key components of photonic integrated circuits are nanoscale optica emitters and nanowaveguides. III‐V semiconductor nanostructures are considered as the most promising material platform for these components due to highly efficient luminescence and high refractive index, but the problem of emission coupling with waveguide is to be solved. In this work, the use of GaP nanowires (NWs) with different types of doping (GaP:Si or GaP:Be) is proposed as optical waveguides with directly integrated electrically‐driven light sources, solving the problem of emission‐to‐waveguide coupling. Single NWs are integrated with electrodes and pump electroluminescence by a tunnel junction allowing to study emission properties with nanoscale spatial resolution. Basing on the experiments on scanning tunnelling microscopy (STM), electron microscopy, time‐resolved photoluminescence micro‐spectroscopy, X‐ray diffraction, and STM‐induced electroluminescence, it is proven that GaP NWs exhibit different integrated light‐source on doping type of NWs. GaP:Be NWs contain inclusion of the crystalline wurtzite phase with a direct bandgap, and, thus, these NW regions can be considered as electrically‐driven nanoscale sources of light monolithically integrated into GaP NW‐based waveguides. Meanwhile, GaP:Si NWs work as optical waveguides capable of efficient light generation over the entire length of NW. The developed designs are promising for construction of integrated photonic circuits.

Funder

Ministry of Science and Higher Education of the Russian Federation

Russian Science Foundation

Publisher

Wiley

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