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Enhanced production of low energy electrons by alpha particle impact

机译:通过alpha粒子撞击增强低能电子的产生

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摘要

Radiation damage to living tissue stems not only from primary ionizing particles but to a substantial fraction from the dissociative attachment of secondary electrons with energies below the ionization threshold. We show that the emission yield of those low energy electrons increases dramatically in ion–atom collisions depending on whether or not the target atoms are isolated or embedded in an environment. Only when the atom that has been ionized and excited by the primary particle impact is in immediate proximity of another atom is a fragmentation route known as interatomic Coulombic decay (ICD) enabled. This leads to the emission of a low energy electron. Over the past decade ICD was explored in several experiments following photoionization. Most recent results show its observation even in water clusters. Here we show the quantitative role of ICD for the production of low energy electrons by ion impact, thus approaching a scenario closer to that of radiation damage by alpha particles: We choose ion energies on the maximum of the Bragg peak where energy is most efficiently deposited in tissue. We compare the electron production after colliding He+ ions on isolated Ne atoms and on Ne dimers (Ne2). In the latter case the Ne atom impacted is surrounded by a most simple environment already opening ICD as a deexcitation channel. As a consequence, we find a dramatically enhanced low energy electron yield. The results suggest that ICD may have a significant influence on cell survival after exposure to ionizing radiation.
机译:对生物组织的辐射损伤不仅源于一次电离粒子,而且很大一部分来自能量低于电离阈值的二次电子的解离附着。我们表明,根据目标原子是否被隔离或嵌入环境中,那些低能电子的发射产率在离子-原子碰撞中会急剧增加。仅当已被一次粒子碰撞电离和激发的原子与另一个原子紧邻时,才可以使用称为原子间库伦衰变(ICD)的碎裂途径。这导致低能电子的发射。在过去的十年中,ICD在光电离后的多个实验中得到了探索。最新结果表明,即使在水团中也能观察到它。在这里,我们展示了ICD在通过离子撞击产生低能电子时的定量作用,从而接近一种更接近于α粒子对辐射的损害的情形:我们在能量最有效地沉积的布拉格峰的最大值上选择离子能量在组织中。我们比较了碰撞的He + 离子在孤立的Ne原子和Ne二聚体(Ne2)上碰撞后的电子产生。在后一种情况下,受影响的Ne原子被一个最简单的环境所包围,该环境已经开放了ICD作为去激励通道。结果,我们发现低能量电子产率大大提高。结果表明,ICD暴露于电离辐射后可能会对细胞存活产生重大影响。

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