Zhang Zi-Dong, Yu Si-Yuan, Xu Haitan, Lu Ming-Hui, Chen Yan-Feng
National Laboratory of Solid State Microstructures, Department of Materials Science and Engineering, Jiangsu Key Laboratory of Artificial Functional Materials, Nanjing University, Nanjing, 210093, China.
School of Materials Science and Intelligent Engineering, Shishan Laboratory, Nanjing University, Suzhou, Jiangsu, 215163, China.
Adv Mater. 2024 May;36(21):e2312861. doi: 10.1002/adma.202312861. Epub 2024 Feb 19.
Coherent phonon transfer via high-quality factor (Q) mechanical resonator strong coupling has garnered significant interest. Yet, the practical applications of these strongly coupled resonator devices are largely constrained by their vulnerability to fabrication defects. In this study, topological strong coupling of gigahertz frequency surface acoustic wave (SAW) resonators with lithium niobate is achieved. The nanoscale grooves are etched onto the lithium niobate surface to establish robust SAW topological interface states (TISs). By constructing phononic crystal (PnC) heterostructures, a strong coupling of two SAW TISs, achieving a maximum Rabi splitting of 22 MHz and frequency quality factor product fQ of ≈1.2 × 10 Hz, is realized. This coupling can be tuned by adjusting geometric parameters and a distinct spectral anticrossing is experimentally observed. Furthermore, a dense wavelength division multiplexing device based on the coupling of multiple TISs is demonstrated. These findings open new avenues for the development of practical topological acoustic devices for on-chip sensing, filtering, phonon entanglement, and beyond.
通过高品质因数(Q)机械谐振器强耦合实现的相干声子转移引起了广泛关注。然而,这些强耦合谐振器器件的实际应用在很大程度上受到其对制造缺陷的脆弱性的限制。在本研究中,实现了千兆赫兹频率表面声波(SAW)谐振器与铌酸锂的拓扑强耦合。在铌酸锂表面蚀刻纳米级凹槽以建立稳健的SAW拓扑界面态(TISs)。通过构建声子晶体(PnC)异质结构,实现了两个SAW TISs的强耦合,实现了22 MHz的最大拉比分裂和约1.2×10 Hz的频率品质因数乘积fQ。这种耦合可以通过调整几何参数来调节,并且在实验中观察到明显的光谱反交叉。此外,展示了一种基于多个TISs耦合的密集波分复用器件。这些发现为开发用于片上传感、滤波、声子纠缠等的实用拓扑声学器件开辟了新途径。