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Quantum Engineering of Atomically Smooth Single-Crystalline Silver Films

机译:原子平滑单晶银膜量子工程

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There is a demand for ultra low-loss metal films with high-quality single crystals and perfect surface for nanophotonics and quantum information processing. Many researches are devoted to alternative materials, but silver is by far theoretically the most preferred low-loss material at optical and near-IR frequencies. Usually, epitaxial growth is used to deposit single-crystalline silver films, but they still suffer from unpredictable losses and well-known dewetting effect that strongly limits films quality. Here we report the two-step approach for e-beam evaporation of atomically smooth single-crystalline metal films. The proposed method is based on the thermodynamic control of film growth kinetics at atomic level, which allows depositing state-of-art metal films and overcoming the film-surface dewetting. Here we use it to deposit 35-100?nm thick single-crystalline silver films with the sub-100pm surface roughness and theoretically limited optical losses, considering an ideal material for ultrahigh-Q nanophotonic devices. Utilizing these films we experimentally estimate the contribution of grain boundaries, material purity, surface roughness and crystallinity to optical properties of metal films. We demonstrate our ?SCULL? two-step approach for single-crystalline growth of silver, gold and aluminum films which open fundamentally new possibilities in nanophotonics, biotechnology and superconductive quantum technologies. We believe it could be readily adopted for the synthesis of other extremely low-loss single-crystalline metal films.
机译:需要对高质量的单晶和完美表面进行超低损耗金属膜,以及用于纳米级和量子信息处理的完美表面。许多研究都致力于替代材料,但银色在理论上是光学和接近红外红外频率的远程最优选的低损耗材料。通常,外延生长用于沉积单晶银膜,但它们仍然遭受不可预测的损失和众所周知的脱模效果,从而强烈限制膜质量。在这里,我们报道了原子平滑单晶金属膜的电子束蒸发的两步方法。该方法基于原子水平在薄膜生长动力学的热力学控制,这允许沉积最先进的金属膜并克服膜表面脱模。在这里,考虑到超高Q纳米光电装置的理想材料,我们将其用来储存35-100·NM厚的单晶银膜和理论上有限的光学损耗。利用这些薄膜,我们通过实验估计晶界,材料纯度,表面粗糙度和结晶度的贡献,以金属膜的光学性质。我们展示了我们的?银,金和铝膜单晶生长的两步方法,开放了纳米级,生物技术和超导量子技术的根本新的可能性。我们认为可以很容易地用于其它极低损损失单晶金属膜的合成。

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