铌酸锂
光电子学
材料科学
光子学
消光比
光调制器
蓝宝石
带宽(计算)
调制(音乐)
超连续谱
电光调制器
衰减
光学
自由光谱范围
薄膜
吸收(声学)
光通信
电吸收调制器
波导管
谐振器
传输(电信)
电压
偏压
光子集成电路
光调制幅度
电子工程
相位调制
频率调制
调幅
量子点
作者
Pierre Didier,P. Jain,Mathieu Bertrand,Jost Kellner,Oliver Pitz,Zhecheng Dai,Mattias Beck,Baile Chen,Jérôme Faist,Rachel Grange
标识
DOI:10.48550/arxiv.2505.23632
摘要
The mid-infrared spectral range holds great promise for applications such as molecular spectroscopy and telecommunications. Many key molecules exhibit strong absorption features in this range, and free-space optical communication benefits from reduced atmospheric attenuation and low transmission losses in specific wavelength bands spanning from 3 to 14 $μm$. Recent progress in MIR photonics has been fuelled by the rapid development of efficient light sources and detectors. However, further advancement is hindered by the lack of low-loss, high-performance integrated photonic platforms and modulators. Lithium niobate on sapphire is a promising candidate, operating across a broad spectral range from 0.4 $μm$ to 4.5 $μm$. We demonstrate a broadband, high-speed lithium niobate on sapphire Mach-Zehnder electro-optic modulator operating from 3.95 to 4.3 $μm$. The device achieves a 3 dB bandwidth exceeding 20 GHz, an extinction ratio of 34 dB, and a half-wave voltage of 22 V$\cdot$cm, delivering optical output power at the half-milliwatt level. These properties are leveraged to demonstrate data transmission at 10 Gbit/s. The modulator is also used to generate a frequency comb with a width of 80 GHz. Furthermore, we demonstrate full $π$-phase modulation in the MIR, representing a key milestone for integrated MIR photonics. These results establish a pathway toward high-speed, energy-efficient MIR photonic systems for applications in telecommunications, sensing, and quantum technologies.
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