论文标题

目标密度对密度血浆中激光加速碳离子的电荷量的影响

Target density effects on charge tansfer of laser-accelerated carbon ions in dense plasma

论文作者

Ren, Jieru, Ma, Bubo, Liu, Lirong, Wei, Wenqing, Chen, Benzheng, Zhang, Shizheng, Xu, Hao, Hu, Zhongmin, Li, Fangfang, Wang, Xing, Yin, Shuai, Feng, Jianhua, Zhou, Xianming, Gao, Yifang, Li, Yuan, Shi, Xiaohua, Li, Jianxing, Ren, Xueguang, Xu, Zhongfeng, Deng, Zhigang, Qi, Wei, Wang, Shaoyi, Fan, Quanping, Cui, Bo, Wang, Weiwu, Yuan, Zongqiang, Teng, Jian, Wu, Yuchi, Cao, Zhurong, Zhao, Zongqing, Gu, Yuqiu, Cao, Leifeng, Zhu, Shaoping, Cheng, Rui, Lei, Yu, Wang, Zhao, Zhou, Zexian, Xiao, Guoqing, Zhao, Hongwei, Hoffmann, Dieter H. H., Zhou, Weimin, Zhao, Yongtao

论文摘要

我们报告了几种MEV穿透密度部分电离等离子体的能量范围内激光加速碳离子的电荷状态测量。血浆是通过在软X射线状态下用激光诱导的Hohlraum辐射的泡沫靶标辐射而产生的。我们使用了三纤维素乙酸盐(c $ _ {9} $ h $ _ {16} $ o $ $ _ {8} $)泡沫为2 mg/cm $ $^{ - 3} $密度,$ 1 $ -MMM交互作用率为目标材料。与离子脉冲长度和相互作用持续时间相比,由于良好的均匀性和长寿命,这种血浆对于高精度测量是有利的。等离子参数被诊断为t $ _ {e} $ = 17 eV和n $ _ {e} $ = 4 $ \ times $ 10 $^{20} $ cm $ $^{ - 3} $。观察到穿过血浆的平均电荷状态高于通常使用的半经验公式预测的平均电荷状态。通过求解速率方程,我们将增强效果归因于目标密度效应,这将一方面增加电离速率,另一方面降低电子捕获率。在通过从气体排放和Z-Pinch到激光直接照射的部分离子化等离子体的预测测量中,从未证明目标密度效应。我们第一次能够通过实验证明目标密度效应在ND玻璃激光辐射的临界密度附近的血浆中起着重要作用。该发现对于重离子束驱动的高能量密度物理和快速点火非常重要。

We report on charge state measurements of laser-accelerated carbon ions in the energy range of several MeV penetrating a dense partially ionized plasma. The plasma was generated by irradiation of a foam target with laser-induced hohlraum radiation in the soft X-ray regime. We used the tri-cellulose acetate (C$_{9}$H$_{16}$O$_{8}$) foam of 2 mg/cm$^{-3}$ density, and $1$-mm interaction length as target material. This kind of plasma is advantageous for high-precision measurements, due to good uniformity and long lifetime compared to the ion pulse length and the interaction duration. The plasma parameters were diagnosed to be T$_{e}$=17 eV and n$_{e}$=4 $\times$ 10$^{20}$ cm$^{-3}$. The average charge states passing through the plasma were observed to be higher than those predicted by the commonly-used semiempirical formula. Through solving the rate equations, we attribute the enhancement to the target density effects which will increase the ionization rates on one hand and reduce the electron capture rates on the other hand. In previsous measurement with partially ionized plasma from gas discharge and z-pinch to laser direct irradiation, no target density effects were ever demonstrated. For the first time, we were able to experimentally prove that target density effects start to play a significant role in plasma near the critical density of Nd-Glass laser radiation. The finding is important for heavy ion beam driven high energy density physics and fast ignitions.

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