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김제형

Kim, Je-Hyung
Solid-State Quantum Architecture Lab.
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InAsP Quantum Dot-Embedded InP Nanowires toward Silicon Photonic Applications

Author(s)
Chang, Ting-YuanKim, HyunseokHubbard, William A.Azizur-Rahman, Khalifa M.Ju, Jung JinKim, Je-HyungLee, Wook-JaeHuffaker, Diana
Issued Date
2022-03
DOI
10.1021/acsami.1c21013
URI
https://scholarworks.unist.ac.kr/handle/201301/58568
Fulltext
https://pubs.acs.org/doi/10.1021/acsami.1c21013
Citation
ACS APPLIED MATERIALS & INTERFACES, v.14, no.10, pp.12488 - 12494
Abstract
Quantum dot (QD) emitters on silicon platforms have been considered as a fascinating approach to building next-generation quantum light sources toward unbreakable secure communications. However, it has been challenging to integrate position-controlled QDs operating at the telecom band, which is a crucial requirement for practical applications. Here, we report monolithically integrated InAsP QDs embedded in InP nanowires on silicon. The positions of QD nanowires are predetermined by the lithography of gold catalysts, and the 3D geometry of nanowire heterostructures is precisely controlled. The InAsP QD forms atomically sharp interfaces with surrounding InP nanowires, which is in situ passivated by InP shells. The linewidths of the excitonic (X) and biexcitonic (XX) emissions from the QD and their powerdependent peak intensities reveal that the proposed QD-in-nanowire structure could be utilized as a non-classical light source that operates at silicon-transparent wavelengths, showing a great potential for diverse quantum optical and silicon photonic applications.
Publisher
AMER CHEMICAL SOC
ISSN
1944-8244
Keyword (Author)
quantum dot-embedded nanowireInAsP quantum dotVLS epitaxysilicon photonicsexciton-biexciton transition
Keyword
SURFACE-RECOMBINATION VELOCITYCORE-SHELLCRYPTOGRAPHYINGAASEMISSIONLASERS

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