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朱慧慧

单位:
电话:15224095714
职务:
地址:杭州市萧山区建设三路733号浙江大学杭州国际科创中心信息港园区 4336
邮箱:huihui001@zju.edu.cn
研究方向:集成光波导器件,光子计算,量子计算

个人简介 科研成果 专利成果

朱慧慧博士,浙江大学杭州国际科创中心科创百人研究员,主要研究方向是集成光波导器件,光子计算和量子计算,聚焦于集成硅基芯片光子和量子计算的实验实现和功能性应用展示。在Nature Communications, Laser & Photonics Reviews 等高水平期刊上发表论文10余篇。

主要研究兴趣:



荣誉及奖励:


[1] Huihui Zhu, et al., “Space-efficient optical computing with an integrated chip diffractive neural network,” Nature Communications 13, 1044, 2022. (ESI高被引论文)

[2] Huihui Zhu#, Haosen Chen#, et al., “Large-scale photonic network with squeezed vacuum states for molecular vibronic spectroscopy,” Nature Communications 15, 6057, 2024.

[3] Huihui Zhu#, Haosen Chen#, Shuyi Li#, et al., “A dynamically programmable quantum photonic microprocessor for graph computation”, Laser & Photonics Reviews, 18, 2300304, 2024.

[4] Hexiang Lin#, Huihui Zhu#, et al. “Variational quantum classifiers via a programmable photonic microprocessor”. arXiv preprint arXiv:2412.02955, 2024.

[5] Huihui Zhu, et al., “Ultra-high sensitivity optical sensors based on cascaded two Fabry-Perot interferometers”, Sensors and Actuators B: Chemical, 277, 152, 2018.

[6] Huihui Zhu, et al., “Strong dipole and higher multi-pole Mie resonance modes with all-dielectric nanoring metasurfaces structure”, Superlattices and Microstructures, 113, 592, 2018.

[7] Huihui Zhu, et al., “High-sensitivity optical sensors based on cascaded reflective MZIs and microring resonators”. Optics Express, 25, 28612, 2017.

[8] Huihui Zhu, et al., “Enhancement of antireflection characteristic of resonant sinusoidal grating”. Optics Communications, 357, 78, 2015.

[9] Li Y, Wan L, Zhang H, Huihui Zhu, et al. “Quantum Fredkin and Toffoli gates on a versatile programmable silicon photonic chip”, npj Quantum Inf. 2022.

[10] Zhenyu Li, Jun Zou, Huihui Zhu, et al., “Biotoxoid photonic sensors with temperature insensitivity using a cascade of ring resonator and Mach–Zehnder interferometer”, ACS sensors, 5, 2448, 2020.

[11] Xia R, Jing X, Huihui Zhu, et al. “Broadband linear polarization conversion based on the coupling of bilayer metamaterials in the terahertz region”. Optics Communications, 383, 310, 2017.