Wang Yifei, Landreman Patrick, Schoen David, Okabe Kye, Marshall Ann, Celano Umberto, Wong H-S Philip, Park Junghyun, Brongersma Mark L
Geballe Laboratory for Advanced Materials, Stanford University, Stanford, CA, USA.
Exponent Inc., Menlo Park, CA, USA.
Nat Nanotechnol. 2021 Jun;16(6):667-672. doi: 10.1038/s41565-021-00882-8. Epub 2021 Apr 19.
The success of semiconductor electronics is built on the creation of compact, low-power switching elements that offer routing, logic and memory functions. The availability of nanoscale optical switches could have a similarly transformative impact on the development of dynamic and programmable metasurfaces, optical neural networks and quantum information processing. Phase-change materials are uniquely suited to enable their creation as they offer high-speed electrical switching between amorphous and crystalline states with notably different optical properties. Their high refractive index has already been harnessed to fashion them into compact optical antennas. Here, we take the next important step, by showing electrically-switchable phase-change antennas and metasurfaces that offer strong, reversible, non-volatile, multi-phase switching and spectral tuning of light scattering in the visible and near-infrared spectral ranges. Their successful implementation relies on a careful joint thermal and optical optimization of the antenna elements that comprise a silver strip that simultaneously serves as a plasmonic resonator and a miniature heating stage. Our metasurface affords electrical modulation of the reflectance by more than fourfold at 755 nm.
半导体电子学的成功建立在紧凑、低功耗开关元件的创造之上,这些元件具备路由、逻辑和存储功能。纳米级光学开关的出现可能会对动态和可编程超表面、光学神经网络以及量子信息处理的发展产生类似的变革性影响。相变材料特别适合用于制造此类开关,因为它们能够在非晶态和晶态之间进行高速电切换,且这两种状态具有显著不同的光学特性。它们的高折射率已被用于将其制造成紧凑的光学天线。在此,我们迈出了重要的下一步,展示了电可切换的相变天线和超表面,它们在可见光和近红外光谱范围内提供强的、可逆的、非易失性的多相切换以及光散射的光谱调谐。它们的成功实现依赖于对由银条构成的天线元件进行仔细的热学和光学联合优化,该银条同时充当等离子体谐振器和微型加热平台。我们的超表面在755纳米处可实现反射率超过四倍的电调制。