Los Alamos National Labroatory, P.O. Box 1663, Los Alamos, New Mexico 87545, USA.
Phys Rev Lett. 2012 Oct 19;109(16):164801. doi: 10.1103/PhysRevLett.109.164801. Epub 2012 Oct 17.
We report the results of the recent high power testing of superconducting radio frequency photonic band gap (PBG) accelerator cells. Tests of the two single-cell 2.1 GHz cavities were performed at both 4 and 2 K. An accelerating gradient of 15 MV/m and an unloaded quality factor Q(0) of 4×10(9) were achieved. It has been long realized that PBG structures have great potential in reducing long-range wakefields in accelerators. A PBG structure confines the fundamental TM(01)-like accelerating mode, but does not support higher order modes. Employing PBG cavities to filter out higher order modes in superconducting particle accelerators will allow suppression of dangerous beam instabilities caused by wakefields and thus operation at higher frequencies and significantly higher beam luminosities. This may lead towards a completely new generation of colliders for high energy physics and energy recovery linacs for the free-electron lasers.
我们报告了超导射频光子带隙 (PBG) 加速器单元最近的高功率测试结果。在 4 摄氏度和 2 摄氏度下,对两个单腔 2.1GHz 腔进行了测试。实现了 15MV/m 的加速梯度和 4×10(9)的空载品质因数 Q(0)。人们早就意识到 PBG 结构在降低加速器中的远程尾场方面具有巨大的潜力。PBG 结构限制了基本的 TM(01)类加速模式,但不支持更高阶模式。在超导粒子加速器中采用 PBG 腔来滤除高阶模式将允许抑制由尾场引起的危险束不稳定性,从而能够在更高的频率和显著更高的束亮度下运行。这可能会导致新一代高能物理对撞机和自由电子激光器的能量回收直线加速器。