激光聚变能源驱动器增益介质:发展与展望

Gain media for laser fusion energy drivers: Retrospect and prospect

  • 摘要: 在激光惯性约束聚变2022年实现点火后,商用激光聚变电站对激光驱动器提出了≥10 Hz重复频率、≥10%电光效率和≥100倍靶增益的极端要求。增益介质作为激光放大器的核心,其储能能力、热管理性能和长期可靠性直接决定了驱动器能否从单次点火跨越到持续发电。本文以激光聚变能源驱动器对增益介质的特殊需求为出发点,系统综述了增益介质的评价体系、研究现状与工程化进展。构建了8个关键指标的增益介质评价体系,分析了指标间的耦合关系与权衡策略。在此基础上,分别论述了激光玻璃、激光晶体和激光陶瓷三类介质的性能特点与发展现状,重点分析了大口径制备、放大自发辐射抑制、热管理和热疲劳寿命等工程问题。最后综合对比了各类介质的适用场景,指出了当前瓶颈问题并进行了发展展望。

     

    Abstract: Following the historic achievement of fusion ignition at the National Ignition Facility in December 2022, laser-driven inertial confinement fusion has entered a new era, yet the transition from scientific breakeven to commercial power plants imposes unprecedented challenges on laser drivers—specifically, ≥10 Hz repetition rate, ≥10% wall-plug efficiency, and ≥100× target gain, which are orders of magnitude beyond the current~0.5% efficiency and multi-hour shot intervals. As the core component of laser amplifiers, the gain medium fundamentally governs whether the driver can bridge this gap through its energy storage capacity, thermal conductivity, thermo-mechanical reliability, and long-term radiation resistance. This paper systematically reviews the evaluation framework, research status, and engineering progress of gain media for laser fusion energy drivers. An eight-indicator evaluation system is constructed, encompassing stimulated emission cross-section, gain bandwidth, fluorescence lifetime, thermal conductivity, laser-induced damage threshold, nonlinear refractive index, quantum defect, and thermal shock resistance parameter, with detailed analysis of their coupling relationships and trade-off strategies. Three categories of gain media are comprehensively examined: Nd-doped phosphate laser glasses, uniquely capable of meter-scale aperture fabrication but severely limited by ultralow thermal conductivity (~0.8 W·m−1·K−1); laser crystals including Nd:YAG, Yb:YAG, and co-doped alkaline-earth fluoride crystals, offering high thermal conductivity yet constrained by crystal growth defects and size limitations; and laser ceramics, particularly Yb:YAG and sesquioxide ceramics, which combine crystal-like thermal performance with the fabrication flexibility approaching that of glasses. Key engineering challenges are discussed, including large-aperture fabrication, amplified spontaneous emission suppression, thermal management under 10 Hz quasi-steady-state heat accumulation, and thermal fatigue lifetime over 109 shot cycles. A comprehensive comparison of existing gain media reveals that no single material currently satisfies all requirements, while critical gaps remain in large-aperture manufacturing consistency and multi-factor coupled aging data under fusion-relevant conditions. Future research directions including advanced material synthesis, integrated device design, and lifetime assessment methodologies are outlined.

     

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