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首页> 外文期刊>Physical review, B >Revealing the ultrafast light-to-matter energy conversion before heat diffusion in a layered Dirac semimetal
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Revealing the ultrafast light-to-matter energy conversion before heat diffusion in a layered Dirac semimetal

机译:在层状狄拉克半金属中进行热扩散之前揭示超快的能量转换

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摘要

There is still no general consensus on how one can describe the out-of-equilibrium phenomena in matter induced by an ultrashort light pulse. We investigate the pulse-induced dynamics in a layered Dirac semimetal SrMnBi2 by pump-and-probe photoemission spectroscopy. At less than or similar to 1 ps, the electronic recovery slowed upon increasing the pump power. Such a bottleneck-type slowing is expected in a two-temperature model ( TTM) scheme, although opposite trends have been observed to date in graphite and in cuprates. Subsequently, an unconventional power-law cooling took place at similar to 100 ps, indicating that spatial heat diffusion is still ill defined at similar to 100 ps. We identify that the successive dynamics before the emergence of heat diffusion is a canonical realization of a TTM scheme. Criteria for the applicability of the scheme is also provided.
机译:关于如何描述由超短光脉冲引起的物质中的失衡现象,仍未达成共识。我们通过泵浦和探针光发射光谱研究层状狄拉克半金属SrMnBi2中的脉冲诱导动力学。小于或等于1 ps时,电子恢复会随着泵浦功率的增加而减慢。尽管迄今为止在石墨和铜酸盐中观察到相反的趋势,但在两温模型(TTM)方案中,预计会出现这种瓶颈类型的减慢。随后,以约100 ps的速率进行了非常规的幂律冷却,这表明空间热扩散仍然难以以约100 ps的速率进行定义。我们确定在热扩散出现之前的连续动力学是TTM方案的规范实现。还提供了该方案的适用性标准。

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