基于分子的印刷电子材料的探索和发展:实验、计算和数据科学的综合方法。

IF 7.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Science and Technology of Advanced Materials Pub Date : 2024-11-13 eCollection Date: 2024-01-01 DOI:10.1080/14686996.2024.2418282
Tatsuo Hasegawa, Satoru Inoue, Seiji Tsuzuki, Sachio Horiuchi, Hiroyuki Matsui, Tomoharu Okada, Reiji Kumai, Koji Yonekura, Saori Maki-Yonekura
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引用次数: 0

摘要

开发基于分子的电子材料的挑战在于其晶体结构的不可控或不可预测的性质,这对于决定电性能和薄膜成形性至关重要。本文综述了一项研究项目的研究结果,该项目致力于通过实验、计算和数据科学的结合,系统地开发晶体有机半导体(OSCs)和有机铁电体。主要成果如下:1)数据科学:我们开发了一种从晶体结构数据库中识别有前途的材料的方法,从而发现了独特的基于分子的铁电体。2)计算科学:基于分子间相互作用计算,阐明了π核烷基链分子高层状结晶度的起源。提出了一种适合分层osc的阶梯结构优化方法。3)材料开发:我们开发了各种烷基化层状OSCs,具有高迁移率,耐热性和溶解性。我们发现了一些独特的现象,包括冻结的液晶相,显著的极性/反极性控制,以及通过混合来控制相,利用烷基链长度的可变性。我们还开发了具有特殊铁电性的分子基铁电体,包括多极化反转、铁电/反铁电序竞争和带π骨架的自旋子型构型。4)高级结构分析:通过结合低温电子显微镜和无x射线电子激光(XFEL),我们可以对通常难以分析的超薄晶体进行晶体结构分析。5)器件开发:通过溶液工艺,利用层状OSCs的自组织生长,我们开发了一种方法来生产非常干净的半导体-绝缘体界面,实现场效应晶体管,在低电压下显示出尖锐(接近理论极限)和稳定的开关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploration and development of molecule-based printed electronics materials: an integrated approach using experimental, computational, and data sciences.

The challenge in developing molecule-based electronic materials lies in the uncontrollable or unpredictable nature of their crystal structures, which are crucial for determining both electrical properties and thin-film formability. This review summarizes the findings of a research project focused on the systematic development of crystalline organic semiconductors (OSCs) and organic ferroelectrics by integrating experimental, computational, and data sciences. The key outcomes are as follows: 1) Data Science: We developed a method to identify promising materials from crystal structure databases, leading to the discovery of unique molecule-based ferroelectrics. 2) Computational Science: The origin of high layered crystallinity in π-core - alkyl-chain-linked molecules was clarified based on intermolecular interaction calculations. We proposed a stepwise structure optimization method tailored for layered OSCs. 3) Material Development: We developed various alkylated layered OSCs, which exhibit high mobility, heat resistance, and solubility. We discovered several unique phenomena, including frozen liquid crystal phases, significant polar/antipolar control, and phase control through mixing, leveraging the variability of alkyl chain length. We also developed molecule-based ferroelectrics showing peculiar ferroelectricity, including multiple polarization reversal, competing ferroelectric/antiferroelectric order, and spinner-type configurations with π-skeletons. 4) Advanced Structural Analysis: By combining cryo-electron microscopy and X-ray-free electron laser (XFEL), we enabled crystal structure analysis for ultrathin crystals that are usually difficult to analyse. 5) Device Development: Utilizing the self-organized growth of layered OSCs through solution processes, we developed a method to produce exceptionally clean semiconductor - insulator interfaces, achieving field-effect transistors that show sharp (near theoretical limit) and stable switching at low voltages.

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来源期刊
Science and Technology of Advanced Materials
Science and Technology of Advanced Materials 工程技术-材料科学:综合
CiteScore
10.60
自引率
3.60%
发文量
52
审稿时长
4.8 months
期刊介绍: Science and Technology of Advanced Materials (STAM) is a leading open access, international journal for outstanding research articles across all aspects of materials science. Our audience is the international community across the disciplines of materials science, physics, chemistry, biology as well as engineering. The journal covers a broad spectrum of topics including functional and structural materials, synthesis and processing, theoretical analyses, characterization and properties of materials. Emphasis is placed on the interdisciplinary nature of materials science and issues at the forefront of the field, such as energy and environmental issues, as well as medical and bioengineering applications. Of particular interest are research papers on the following topics: Materials informatics and materials genomics Materials for 3D printing and additive manufacturing Nanostructured/nanoscale materials and nanodevices Bio-inspired, biomedical, and biological materials; nanomedicine, and novel technologies for clinical and medical applications Materials for energy and environment, next-generation photovoltaics, and green technologies Advanced structural materials, materials for extreme conditions.
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