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1.
利用1维粒子模拟程序,研究了超短超强激光脉冲与超薄双层靶(基底层和加速层厚度均为nm量级)相互作用产生准单能质子束的过程。研究表明,基底层厚度及加速层厚度对质子能谱的影响至关重要。减小基底层厚度,靶后静电场增强,质子的最大能量显著增大;减小加速层厚度,靶后静电场分布变得更加均匀,质子能谱中心能量变化不大,单能性变好。通过优化参数,获得了能散度为7%的准单能质子束。  相似文献   

2.
王子涛  周维民  邓志刚  宋尧祥 《强激光与粒子束》2022,34(11):112001-1-112001-6
采用紧聚焦的超强短脉冲激光与固体通道靶相互作用是获得大电量、高准直相对论电子束的一种有效方式。实验中由于激光预脉冲烧蚀靶壁产生预等离子体会膨胀、填充到真空通道中,从而导致电子束品质发生变化。采用二维PIC粒子模拟程序研究了通道靶中填充预等离子体的电子加速过程。模拟结果显示,在功率密度为5.0×10^(20W/cm^(2))的超强短脉冲激光条件下,通道中填充一定密度的等离子体时激光场优先与低密度等离子体相互作用,激光脉冲与通道壁的相互作用减弱,电子加速机制由纵向场主导的真空电子加速转变为横向电场主导的等离子体电子加速,产生电子束具有更大的电荷量,但能量降低,发散角增大。  相似文献   

3.
为了探索飞秒激光与固体靶相互作用中高能质子的产生和加速机制,在超短超强激光装置“SILEX-I”上进行了飞秒激光与平面固体薄膜Cu靶的相互作用中高能质子空间分布、能谱和产额的实验研究。实验采用固体核径迹探测器CR39和Thomson离子谱仪相结合的方式,在固体靶背表面法线方向测量了质子空间分布、能谱和产额。实验结果表明:质子沿着靶背法线方向发射,质子空间分布呈圆环状,存在一定的立体角;质子在一定能量处出现截断;截断能量的大小与靶厚度有关。经分析,高能离子的产生和加速是多种作用机制共同作用的结果,其中静电场中的TNSA加速机制则占主导地位。  相似文献   

4.
为了探索飞秒激光与固体靶相互作用中高能质子的产生和加速机制,在超短超强激光装置“SILEX-I”上进行了飞秒激光与平面固体薄膜Cu靶的相互作用中高能质子空间分布、能谱和产额的实验研究。实验采用固体核径迹探测器CR39和Thomson离子谱仪相结合的方式,在固体靶背表面法线方向测量了质子空间分布、能谱和产额。实验结果表明:质子沿着靶背法线方向发射,质子空间分布呈圆环状,存在一定的立体角;质子在一定能量处出现截断;截断能量的大小与靶厚度有关。经分析,高能离子的产生和加速是多种作用机制共同作用的结果,其中静电场中的TNSA加速机制则占主导地位。  相似文献   

5.
超强激光加速产生的高能质子束源在基础物理研究、材料科学、生物医疗等领域具有广泛应用前景。基于激光聚变研究中心的SILEX-II装置,开展了高对比度飞秒激光驱动纳米刷靶质子加速实验研究。采用等离子体镜技术进一步提升激光对比度,有效降低了预脉冲对纳米刷靶结构的影响。相比于平面靶,采用纳米刷靶质子截止能量提高到1.5倍,质子束产额增加近一个量级,成功验证了超高功率密度下纳米刷靶对激光离子加速的增强效果,并且有效提升了质子束空间分布的均匀性。研究结果为高品质质子束源的产生和应用提供了技术途径。  相似文献   

6.
提出了一种新型的双锥靶结构用于准单能质子束加速。利用二维PIC粒子模拟程序研究了强激光与双锥靶作用加速产生质子束的物理过程以及质子束品质。双锥靶产生的质子束在峰值能量和发散角度等方面都明显优于相同激光条件下单锥靶和平面靶的结果。尤其与平面靶相比,双锥靶质子束的峰值能量提高了5倍以上,而且很好地保持准单能性。一方面双锥靶的内锥部分是临界密度材料,提高了激光的吸收效率;另一方面双锥靶内形成了更强的准静态磁场,可以约束引导更多的超热电子传输过锥尖,进而增强加速质子束的鞘层电场。  相似文献   

7.
为了研究激光鞘场中质子层的尺寸对质子束特性的影响,本文应用中国工程物理研究院 激光聚变研究中心的二维Particle-In-Cell (2D-PIC)数值模拟程序Flips2D进行了相关数值模拟研究. 研究了质子束总能量随时间的变化,得出了加速持续过程与激光脉冲持续时间的关系; 研究了质子层的宽度对加速后质子束发散角和能谱的影响;研究了质子层的厚与加速后质子束 发散角和能谱的关系;得出了质子层的初始尺寸对加速后质子特性的影响规律.  相似文献   

8.
 用100 TW激光器产生的超短超强激光与5 μm薄膜Cu靶的进行打靶实验,测量了靶背法线方向产生质子的角分布和能谱。实验中采用辐射变色膜片HD810测量质子的角分布,用CR39和Thomson磁谱仪结合测量质子能量分布。测量结果表明:质子发射张角为10°左右,质子沿着靶背法线方向发射,在能量为570 keV处出现截断。通过测量质子能量分布验证了超短超强激光等离子体相互作用过程中靶背法线鞘层质子加速机制。  相似文献   

9.
 根据超短超强激光与固体靶相互作用中质子靶前表面加速和靶后表面加速两种机制,对在SILEX-I激光器上进行的质子加速实验中获得的质子最大截止能量进行了估算,认为实验中质子产生的主要机制是靶后表面加速。同时结果表明:对该装置的实验条件,靶前表面加速机制可以产生质子的最大能量约为2 MeV;靶后表面加速机制可以产生的质子的最大能量约11 MeV。另外用Multi2005程序计算了激光器信噪比对靶后表面加速机制的影响。计算表明:SILEX-I激光器信噪比达到108∶1时,预脉冲对用5 μm靶时鞘层加速电场的影响可以忽略。  相似文献   

10.
利用激光离焦的方法优化超强激光驱动的质子加速   总被引:1,自引:0,他引:1       下载免费PDF全文
在中国科学院物理研究所"极光Ⅱ 号"飞秒激光装置上,对激光与薄膜靶相互作用产生的靶后质子束特性进行了实验研究.结果发现,在主脉冲前存在较强的飞秒预脉冲的情况下,通过适当地对激光束散焦,可以使质子束的转换效率提高3 个数量级,并同时改善质子束的准直性.分析表明,激光散焦的方法可以有效地抑制预脉冲的流体力学效应对质子加速的负面影响,从而提高质子的转换效率.此外,粒子模拟还发现,散焦量增大时可以产生更多的中低能超热电子,这也有利于建立高质量的质子加速电场. 关键词: 超短脉冲激光与等离子体相互作用 质子加速 转换效率  相似文献   

11.
Energetic proton beam generation and the suppression of transverse proton beam divergence are investigated in this paper. In laser-foil interactions, foil ions are accelerated by an ambipolar field created by accelerated high-energy electrons. The high-energy electrons are generated by the ponderomotive force of an intense laser. When an intense laser illuminates a hydrogen foil target, the electrons are strongly accelerated longitudinally, and a localized negative electrostatic potential is generated at the opposite side of the laser illumination. Foil protons are accelerated longitudinally and at the same time extracted to the central axis of the laser by the localized potential in the transverse direction. Consequently, transverse proton divergence is suppressed and a low-emittance MeV proton beam is produced.  相似文献   

12.
为了更细致地理解鞘场质子加速机制,应用2维数值模拟程序Flips2D研究了质子的初始位置对加速以后质子束特性的影响。数值模拟结果表明:质子的初始位置对质子束特性的影响非常明显。质子的出射角与其在横向的初始位置有关,初始位置离激光轴越远,其出射角越大。  相似文献   

13.
During the laser foil interaction,the output ion beam quality including the energy spread and beam divergence can be improved by the target ablation,due to the direct laser acceleration(DLA) electrons generated in the ablation plasma.The acceleration field established at the target rear by these electrons,which is highly directional and triangle-envelope,is helpful for the beam quality.With the help of the target ablation,both the beam divergence and energy spread will be reduced.If the ablation is more sufficient,the impact of DLA-electron-caused field will be strengthened,and the beam quality will be better,confirmed by the particle-in-cell simulation.  相似文献   

14.
Multi-lasers are proposed to enhance the proton acceleration in laser plasma interaction. A rear-holed target is illuminated by three lasers from different directions. The scheme is demonstrated by two-dimensional particlein-cell simulations. The electron cloud shape is controlled well and the electron density is improved significantly. The electrons accelerated by the three lasers induce an enhanced target normal sheath acceleration(TNSA) which suppresses the proton beam divergence and improves the maximum proton energy. The maximum proton energy is 22.9 Me V, which increased significantly than that of a single-laser target interaction. Meanwhile, the average divergence angle(22.3?) is reduced. The dependence of the proton beam on the length of sidewall is investigated in detail and the optimal length is obtained.  相似文献   

15.
基于带电粒子活化测谱方法在SGⅡ-U装置上开展了皮秒激光靶背鞘场机制质子加速实验研究,对靶参数进行了优化.利用带电粒子活化测谱方法测量了相同激光条件、不同Cu薄膜靶厚度情况下靶背鞘场加速质子的最高截止能量、角分布、总产额以及激光能量到质子的转化效率等关键参数.实验发现,SGⅡ-U皮秒激光靶背鞘场加速机制的最佳Cu薄膜靶厚度为10 μm,对应质子最高能量接近40 MeV,质子(>4 MeV)总产额约4×1012个,激光能量到质子的转化效率约2%.薄膜靶更厚或者更薄都会降低加速质子的最高截止能量;当靶厚减薄至1 μm时,皮秒激光的预脉冲开始对靶背鞘场产生显著影响,质子最高截止能量急剧下降,高能质子束斑呈现空心结构;而当靶厚增加至35 μm时,虽然质子束的能量有所降低,但是质子束斑的均匀性更好.  相似文献   

16.
Advanced targets based on graphene oxide and gold thin film were irradiated at high laser intensity (1018–1019 W/cm2) with 50‐fs laser pulses and high contrast (108) to investigate ion acceleration in the target‐normal‐sheath‐acceleration regime. Time‐of‐flight technique was employed with SiC semiconductor detectors and ion collectors in order to measure the ion kinetic energy and to control the properties of the generated plasma. It was found that, at the optimized laser focus position with respect to the target, maximum proton acceleration up to about 3 MeV energy and low angular divergence could be generated. The high proton energy is explained as due to the high electrical and thermal conductivity of the reduced graphene oxide structure. Dependence of the maximum proton energy on the target focal position and thickness is presented and discussed.  相似文献   

17.
A new ion radiation-pressure acceleration regime, the "leaky light sail," is proposed which uses sub-skin-depth nanometer foils irradiated by circularly polarized laser pulses. In the regime, the foil is partially transparent, continuously leaking electrons out along with the transmitted laser field. This feature can be exploited by a multispecies nanofoil configuration to stabilize the acceleration of the light ion component, supplementing the latter with an excess of electrons leaked from those associated with the heavy ions to avoid Coulomb explosion. It is shown by 2D particle-in-cell simulations that a monoenergetic proton beam with energy 18 MeV is produced by circularly polarized lasers at intensities of just 101? W/cm2. 100 MeV proton beams are obtained by increasing the intensities to 2 × 102? W/cm2.  相似文献   

18.
激光氦离子源产生的MeV能量的氦离子因有望用于聚变反应堆材料辐照损伤的模拟研究而得到关注.目前激光驱动氦离子源的主要方案是采用相对论激光与氦气射流作用加速高能氦离子,但这种方案在实验上难以产生具有前向性和准单能性、数MeV能量、高产额的氦离子束,而这些氦离子束特性是材料辐照损伤研究中十分关注的.不同于上述激光氦离子产生方法,我们提出了一种利用超强激光与固体-气体复合靶作用产生氦离子的新方法.利用这种方法,在实验上,采用功率密度5×10~(18)W/cm~2的皮秒脉宽的激光脉冲与铜-氦气复合靶作用,产生了前向发射的2.7 MeV的准单能氦离子束,能量超过0.5 MeV的氦离子产额约为10~(13)/sr.二维粒子模拟显示,氦离子在靶背鞘场加速和类无碰撞冲击波加速两种加速机理共同作用下得到加速.同时粒子模拟还显示氦离子截止能量与超热电子温度成正比.  相似文献   

19.
The comparative efficiency and beam characteristics of high-energy ions generated from the interaction of a petawatt laser pulse with thin foil target and a small solid-density plasma bunch target have been studied by particle-in-cell simulation under identical conditions. It is shown that thin foil and small solid dense target of micrometer size can be efficiently accelerated when irradiated by a laser pulse of intensity >1021?W/cm2. Using direct beam measurements, we find that small solid dense target acceleration produces higher energy particles with smaller divergence and a higher efficiency compared to thin foil target acceleration. The merits of small solid target acceleration can be exploited for potential applications such as its role as ignitor for fast ignition in inertial confinement fusion.  相似文献   

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