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先进的光子工艺在光伏和储能系统中的应用。

Advanced Photonic Processes for Photovoltaic and Energy Storage Systems.

机构信息

Institute of Electronic Structure and Laser Foundation for Research and Technology - Hellas, Heraklion, 71110, Crete, Greece.

Center of Materials Technology and Photonics & Electrical Engineering Department, School of Applied Technology, Technological Educational Institute (TEI) of Crete, Heraklion, 71004, Crete, Greece.

出版信息

Adv Mater. 2017 Oct;29(39). doi: 10.1002/adma.201700335. Epub 2017 Aug 24.

Abstract

Solar-energy harvesting through photovoltaic (PV) conversion is the most promising technology for long-term renewable energy production. At the same time, significant progress has been made in the development of energy-storage (ES) systems, which are essential components within the cycle of energy generation, transmission, and usage. Toward commercial applications, the enhancement of the performance and competitiveness of PV and ES systems requires the adoption of precise, but simple and low-cost manufacturing solutions, compatible with large-scale and high-throughput production lines. Photonic processes enable cost-efficient, noncontact, highly precise, and selective engineering of materials via photothermal, photochemical, or photophysical routes. Laser-based processes, in particular, provide access to a plethora of processing parameters that can be tuned with a remarkably high degree of precision to enable innovative processing routes that cannot be attained by conventional approaches. The focus here is on the application of advanced light-driven approaches for the fabrication, as well as the synthesis, of materials and components relevant to PV and ES systems. Besides presenting recent advances on recent achievements, the existing limitations are outlined and future possibilities and emerging prospects discussed.

摘要

通过光伏 (PV) 转换进行太阳能收集是长期可再生能源生产最有前途的技术。与此同时,储能 (ES) 系统的发展也取得了重大进展,储能系统是发电、传输和使用能源循环中的重要组成部分。为了实现商业应用,提高 PV 和 ES 系统的性能和竞争力需要采用精确但简单且低成本的制造解决方案,这些解决方案与大规模和高通量生产线兼容。光子过程可通过光热、光化学或光物理途径以经济高效、非接触、高度精确和选择性的方式对材料进行工程设计。特别是基于激光的工艺提供了大量的处理参数,这些参数可以以非常高的精度进行调整,从而实现无法通过传统方法获得的创新处理途径。这里的重点是应用先进的光驱动方法来制造以及合成与 PV 和 ES 系统相关的材料和组件。除了介绍最近在这方面的进展,还概述了现有的局限性,并讨论了未来的可能性和新兴前景。

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