Advances in 0D quantum dots and hybrid nanoarchitectures for high-performance gas sensing devices.

IF 2.8 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Nanotechnology Pub Date : 2025-03-31 DOI:10.1088/1361-6528/adc310
Utkarsh Kumar, Zu-Yin Deng, Bal Chandra Yadav, M W Lee, Chiu-Hsien Wu
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Abstract

Zero-dimensional quantum dots (QDs) and their hybrid structures having been rapidly developed are reshaping the design and performance of next generation ultrafast electronic and optoelectronic devices. The high-performance metrics achievable in photodetectors, solar cells, transistors, and other application areas can be realized through the use of QDs with their tunable electronic and optical properties. Recent advances in the synthesis of QD hybrid structures, where QDs are incorporated within other nanostructure dimensions (1D nanowires, 2D materials), have dramatically increased charge carrier mobility, lowered recombination rates, and resulted in highly controlled interfacial properties. Synergistic effects between these hybrid configurations are exploited, including improved charge separation and enhanced exciton dissociation, which are very important for having ultrafast response times and greater sensitivity. Advanced fabrication techniques such as chemical vapor deposition and solution based self-assembly, QD hybrids can be fabricated with highly controlled interfaces and optimal energy band alignments. Further, computational simulations such as density functional theory (DFT) and time dependent DFT have provided further insights into the charge dynamics and electronic interactions in these hybrid systems for guidance on their design and application. The potential of QD-based hybrid architectures in addressing future information processing demands is demonstrated in this work, setting the stage for the development of high-speed, low-power devices in communications, sensing, and renewable energy technologies.

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用于高性能气体传感设备的 0D 量子点和混合纳米架构的进展。
零维量子点(0D)及其混合结构的迅速发展正在重塑下一代超快电子和光电子器件的设计和性能。光电探测器、太阳能电池、晶体管和其他应用领域的高性能指标可以通过使用具有可调谐电子和光学特性的量子点来实现。在合成量子点杂化结构方面的最新进展,将量子点集成到其他纳米结构尺寸(一维纳米线,二维材料)中,极大地提高了载流子迁移率,降低了重组率,并导致了高度控制的界面性能。这些混合结构之间的协同效应被利用,包括改善电荷分离和增强激子解离,这对于实现超快的响应时间和更高的灵敏度至关重要。先进的制造技术,如化学气相沉积和基于溶液的自组装,可以制造具有高度控制界面和最佳能带排列的量子点杂化体。此外,密度泛函理论(DFT)和时间依赖DFT等计算模拟为这些混合系统中的电荷动力学和电子相互作用提供了进一步的见解,为其设计和应用提供了指导。这项工作展示了基于量子点的混合架构在解决未来信息处理需求方面的潜力,为通信、传感和可再生能源技术中高速、低功耗设备的发展奠定了基础。 。
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来源期刊
Nanotechnology
Nanotechnology 工程技术-材料科学:综合
CiteScore
7.10
自引率
5.70%
发文量
820
审稿时长
2.5 months
期刊介绍: The journal aims to publish papers at the forefront of nanoscale science and technology and especially those of an interdisciplinary nature. Here, nanotechnology is taken to include the ability to individually address, control, and modify structures, materials and devices with nanometre precision, and the synthesis of such structures into systems of micro- and macroscopic dimensions such as MEMS based devices. It encompasses the understanding of the fundamental physics, chemistry, biology and technology of nanometre-scale objects and how such objects can be used in the areas of computation, sensors, nanostructured materials and nano-biotechnology.
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