论文标题
下一代超导RF技术基于先进的薄膜技术和创新材料,用于加速器增强性能和能量覆盖率
Next-Generation Superconducting RF Technology based on Advanced Thin Film Technologies and Innovative Materials for Accelerator Enhanced Performance and Energy Reach
论文作者
论文摘要
超导RF是未来粒子加速器的关键技术,现在依靠大量NB以外的高级表面来实现性能和效率的飞跃。 SRF薄膜策略旨在通过使用高功能性材料来改变当前的SRF技术,从而解决所有必要的功能。社区正在为开发下一代薄膜的腔体部署三项研究的努力。开发了CU上的NB,以降低的成本和更好的热稳定性,其性能与大量NB一样好或更好。最近的结果表明,加速场的改善和Q坡度大大减少表明了它们在许多应用中的潜力。第二项研究的目的是开发涂有材料的腔,这些材料可以在高温下运行或维持更高的领域。已经为SRF应用的NB3SN的优点建立了原则证明。现在需要研究以进一步利用材料并通过新颖的沉积技术发挥其全部潜力。第三次研究是将SRF的性能推广到仅具有多层涂层的超导体的能力之外。同时,需要开发以提供高质量的基材,冷却方案和针对薄膜腔量身定制的冷冻模块设计。这三项研究推力的最新结果表明,SRF薄膜技术是在技术革命的前夕。要使他们成熟,需要积极的社区支持和持续资金来解决支持材料沉积技术,表面和RF研究的基本发展,与扩展和工业化相关的技术挑战。凭借专用和持续的投资,下一代薄膜的腔体将以高性能和效率成为现实,促进能源可持续科学,同时实现更高的发光度和更高的能量。
Superconducting RF is a key technology for future particle accelerators, now relying on advanced surfaces beyond bulk Nb for a leap in performance and efficiency. The SRF thin film strategy aims at transforming the current SRF technology by using highly functional materials, addressing all the necessary functions. The community is deploying efforts in three research thrusts to develop next-generation thin-film based cavities. Nb on Cu cavities are developed to perform as good as or better than bulk Nb at reduced cost and with better thermal stability. Recent results showing improved accelerating field and dramatically reduced Q slope show their potential for many applications. The second research thrust is to develop cavities coated with materials that can operate at higher temperatures or sustain higher fields. Proof of principle has been established for the merit of Nb3Sn for SRF application. Research is now needed to further exploit the material and reach its full potential with novel deposition techniques. The third line of research is to push SRF performance beyond the capabilities of the superconductors alone with multilayered coatings. In parallel, developments are needed to provide quality substrates, cooling schemes and cryomodule design tailored to thin film cavities. Recent results in these three research thrusts suggest that SRF thin film technologies are at the eve of a technological revolution. For them to mature, active community support and sustained funding are needed to address fundamental developments supporting material deposition techniques, surface and RF research, technical challenges associated with scaling and industrialization. With dedicated and sustained investment, next-generation thin-film based cavities will become a reality with high performance and efficiency, facilitating energy sustainable science while enabling higher luminosity, and higher energy.