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2020 年度 実績報告書

A novel design of integrated optical circuits and nanolaser devices using 2D and quantum dot perovskites

研究課題

研究課題/領域番号 20H02197
研究機関東京大学

研究代表者

何 亜倫  東京大学, 大学院工学系研究科(工学部), 助教 (20815386)

研究分担者 項 栄  東京大学, 大学院工学系研究科(工学部), 准教授 (20740096)
八井 崇  豊橋技術科学大学, 工学(系)研究科(研究院), 教授 (80505248)
研究期間 (年度) 2020-04-01 – 2023-03-31
キーワードペロブスカイトナノ結晶 / perovskite nanocrystals / ナノレーザー / nanolasers / lithography / self-assembly
研究実績の概要

Perovskite nanocrystals exhibit outstanding performances in optoelectronics and nanophotonics, and they have been investigated as a promising medium for high-quality photonic devices such as nanolasers. However, for perovskite-based single-mode lasers to become practical, on-chip nanofabrication methods via the standard top-down lithography process are strongly desired. The bottleneck to achieving lithography of perovskites lies in their reactivity to chemicals used for lithography as illustrated by issues of instability, surface roughness, and internal defects with the fabricated structures. The realization of lithographic perovskite single-mode lasers in large areas remains a challenge.
In FY 2020, we investigated and presented a self-healing lithographic patterning method for perovskite nanocrystals, and further, we demonstrate large-area single-mode laser arrays based on CsPbBr3 perovskite nanocrystals.The self-healing process is compatible with the standard lithography process and greatly improves the quality of lithographic laser cavities.
A single-mode micro-disk laser array is demonstrated with a low threshold. This work presents a general and promising strategy for standard top-down lithography fabrication of high-quality perovskite devices and enables research on large-area perovskite-based integrated optoelectronic circuits.

現在までの達成度 (区分)
現在までの達成度 (区分)

2: おおむね順調に進展している

理由

In this work, we develop a self-healing lithographic patterning technique using perovskite CsPbBr3 nanocrystals, and it is demonstrated to realize high-quality and high-crystallinity single-mode laser arrays.
This self-healing lithographic patterning technique, consisting of ligand engineering and self-assembly of perovskite NCs, has the unique advantages of being compatible with the standard top-down lithography processes and enabling the fabrication of high-quality, crystallinity, and precisely size-controlled optical cavities based on lead halide perovskites.
Accordingly, the laser array with the self-healing process exhibits promising single-mode lasing at a low threshold of 3.8 μJ/cm2 at room temperature, which is two-order lower than that of the laser array without the self-healing process.
Due to the precise control of the dimensions of the laser cavities, the single-mode lasing wavelength is controlled over a range of up to 6.4 nm.
The result of this work has been published in Advanced Functional Materials and presented at international conferences.

今後の研究の推進方策

Based on the experiences of nanofabrication on perovskite nanocrystal, we will further design and fabricated the plasmonic waveguide and lattice nanolaser as the next step.
Plasmonic nanolasers provide a valuable opportunity for expanding subwavelength applications; however, perovskite nanocrystal-based plasmonic lasers, especially nanolasers that support plasmonic-waveguide mode, are still a challenge and remain unexplored.
Also, the plasmonic lattice laser is a promising wavelength-scale laser device for the directional lasing emission, which could be used in various applications including sensing, imaging, and data communications.
To further integrate perovskite laser for further nanophotonic applications, we will design and demonstrate the coupling between nanolaser and low-loss waveguide via all top-down nanofabrication to control light propagating on a small footprint with low-loss optical modes.

備考

It is very rude to have no option of "Taiwan" in the list of counterpart countries.

  • 研究成果

    (10件)

すべて 2021 2020 その他

すべて 国際共同研究 (1件) 雑誌論文 (2件) (うち国際共著 2件、 査読あり 2件) 学会発表 (2件) (うち国際学会 1件、 招待講演 1件) 備考 (5件)

  • [国際共同研究] National Taiwan University/Academia Sinica/National Taiwan Normal University(台湾)

    • 国名
      その他の国・地域
    • 外国機関名
      National Taiwan University/Academia Sinica/National Taiwan Normal University
  • [雑誌論文] Lithographic in-mold patterning for CsPbBr<sub>3</sub> nanocrystals distributed Bragg reflector single-mode laser2021

    • 著者名/発表者名
      Ahmad Kamal Ahmad Syazwan、Lin Cheng-Chieh、Xing Di、Lee Yang-Chun、Wang Zhiyu、Chen Mu-Hsin、Ho Ya-Lun、Chen Chun-Wei、Delaunay Jean-Jacques
    • 雑誌名

      Nanoscale

      巻: 13 ページ: 15830~15836

    • DOI

      10.1039/D1NR04543A

    • 査読あり / 国際共著
  • [雑誌論文] Self‐Healing Lithographic Patterning of Perovskite Nanocrystals for Large‐Area Single‐Mode Laser Array2020

    • 著者名/発表者名
      Xing Di、Lin Cheng‐Chieh、Ho Ya‐Lun、Kamal A. Syazwan A.、Wang I‐Ta、Chen Chia‐Chun、Wen Cheng‐Yen、Chen Chun‐Wei、Delaunay Jean‐Jacques
    • 雑誌名

      Advanced Functional Materials

      巻: 31 ページ: 2006283~2006283

    • DOI

      10.1002/adfm.202006283

    • 査読あり / 国際共著
  • [学会発表] Self-Healing and In-Mold Patterning for Perovskite Nanocrystal Lasers2021

    • 著者名/発表者名
      Ya-Lun Ho
    • 学会等名
      IEDMS 2021, International Electron Devices & Materials Symposium, 2021
    • 国際学会 / 招待講演
  • [学会発表] Ligand Engineering and Self-Assemble Recrystallization of Perovskite Nanocrystals for High-Quality Patterning and Single-Mode Lasing2021

    • 著者名/発表者名
      Xing Di、Lin Cheng‐Chieh、Ho Ya‐Lun、Kamal A. Syazwan A.、Wang I‐Ta、Chen Chia‐Chun、Wen Cheng‐Yen、Chen Chun‐Wei、Delaunay Jean‐Jacques
    • 学会等名
      第68回応用物理学会春季学術講演会
  • [備考] Personal Website (Ya-Lun HO)

    • URL

      https://sites.google.com/site/utyalunho/research

  • [備考] Google Scholar (Ya-Lun HO)

    • URL

      https://scholar.google.com/citations?user=4r-hkooAAAAJ&hl=en

  • [備考] Researchmap (Ya-Lun HO)

    • URL

      https://researchmap.jp/yalunho

  • [備考] ORCiD (Ya-Lun HO)

    • URL

      https://orcid.org/0000-0001-8274-5978

  • [備考] Scopus (Ya-Lun HO)

    • URL

      https://www.scopus.com/authid/detail.uri?authorId=55601449300

URL: 

公開日: 2022-12-28  

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