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用于量子点的人工引导元宇宙合成:通过增强人工智能推进纳米材料研究。

Human-Guided Metaverse Synthesis for Quantum Dots: Advancing Nanomaterial Research through Augmented Artificial Intelligence.

作者信息

Xu Yao, Gao Yuechen, Wang Min, Zhu Xi

机构信息

School of Science and Engineering, Chinese University of Hong Kong, Shenzhen, 2001 Longxiang Boulevard, Longgang District, Shenzhen, Guangdong 518172, People's Republic of China.

School of Materials and Energy, Southwest University, Chongqing 400715, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 28;16(34):45207-45213. doi: 10.1021/acsami.4c09842. Epub 2024 Aug 13.

Abstract

This study proposes an innovative paradigm for metaverse-based synthesis experiments, aiming to enhance experimental optimization efficiency through human-guided parameter tuning in the metaverse and augmented artificial intelligence (AI) with human expertise. By integration of the metaverse experimental system with automated synthesis techniques, our goal is to profoundly extend the efficiency and advancement of materials chemistry. Leveraging advanced software algorithms and simulation techniques within the metaverse, we dynamically adjust synthesis parameters in real time, thereby minimizing the conventional trial-and-error methods inherent in laboratory experiments. In comparison fully AI-driven adjustments, this human-intervened approach to metaverse parameter tuning achieves desired results more rapidly. Coupled with automated synthesis techniques, experiments in the metaverse system can be swiftly realized. We validate the high synthesis efficiency and precision of this system through NaYF:Yb/Tm nanocrystal synthesis experiments, highlighting its immense potential in nanomaterial studies. This pioneering approach not only simplifies the process of nanocrystal preparation but also paves the way for novel methodologies, laying the foundation for future breakthroughs in materials science and nanotechnology.

摘要

本研究提出了一种基于元宇宙的合成实验创新范式,旨在通过在元宇宙中进行人工引导的参数调整以及利用人类专业知识增强人工智能(AI),来提高实验优化效率。通过将元宇宙实验系统与自动化合成技术相结合,我们的目标是大幅提升材料化学的效率和进展。利用元宇宙中的先进软件算法和模拟技术,我们实时动态调整合成参数,从而最大限度减少实验室实验中固有的传统试错方法。与完全由AI驱动的调整相比,这种人工干预的元宇宙参数调整方法能更快取得理想结果。结合自动化合成技术,元宇宙系统中的实验能够迅速实现。我们通过NaYF:Yb/Tm纳米晶合成实验验证了该系统的高合成效率和精度,突出了其在纳米材料研究中的巨大潜力。这种开创性方法不仅简化了纳米晶制备过程,还为新方法铺平了道路,为材料科学和纳米技术未来的突破奠定了基础。

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