论文标题
通过合金控制Au-Ag薄膜中热载体放松时间
Control of hot-carrier relaxation time in Au-Ag thin films through alloying
论文作者
论文摘要
结构的等离子共振主要取决于其光学特性和几何形状,可以对其进行修改以使热载体光电探测器具有出色的性能。最近,金属合金在通过化学成分工程来调整等离激元结构的共振方面发挥了重要作用。但是,尚不清楚合金如何修饰生成的热载体的时间动态。在这项工作中,我们阐明了化学成分对原型AUX AUX AG1-X薄膜系统的热载体放松时间的作用。通过时间分辨的光谱测量值在可见的波长范围内,我们测量了组成依赖性的松弛时间,对于恒定泵的流利度而变化为8倍。令人惊讶的是,由于光损失的减少,在固定的通量下,将2%的AG添加到AU膜中可以将热载体寿命增加约35%。此外,发现放松时间与介电常数的虚构部分成反比。我们的结果表明,合金是有效控制金属热载体松弛时间的有前途的方法。
The plasmon resonance of a structure is primarily dictated by its optical properties and geometry, which can be modified to enable hot-carrier photodetectors with superior performance. Recently, metal-alloys have played a prominent role in tuning the resonance of plasmonic structures through chemical composition engineering. However, it has been unclear how alloying modifies the time dynamics of generated hot-carriers. In this work, we elucidate the role of chemical composition on the relaxation time of hot-carriers for the archetypal Aux Ag1-x thin-film system. Through time-resolved optical spectroscopy measurements in the visible wavelength range, we measure composition-dependent relaxation times that vary up to 8x for constant pump fluency. Surprisingly, we find that the addition of 2% of Ag into Au films can increase the hot carrier lifetime by approximately 35% under fixed fluence, as a result of a decrease in optical loss. Further, the relaxation time is found to be inversely proportional to the imaginary part of the permittivity. Our results indicate that alloying is a promising approach to effectively control hot-carrier relaxation time in metals.