Okawa Youhei, Fujisawa Shunsuke, Yasutake Yuhsuke, Fukatsu Susumu
Opt Express. 2024 Jan 1;32(1):1-10. doi: 10.1364/OE.496570.
We demonstrate decoherence-tolerant transmission of a Bell state through a single-mode fiber (SMF) using the photon frequency degree of freedom. To this end, a slightly non-degenerate polarization-entangled singlet, | ⟩=(|HV⟩-|VH⟩)/2, is localized at the SMF as the depolarization channel subject to random noise due to incessant fiber bending. Two-photon beats and quantum state tomography jointly verify the absence of collective decoherence, showing that | ⟩ is the sought-after one-dimensional decoherence-free subspace (DFS) pertaining to SMF. Efficient splitting and combining of photon streams in our DFS help outperform the DFS in time domain. This motivates us to attempt DFS-enabled fault-tolerant fiber transmission of biphoton qubits. Two-photon BB84 protocol is implemented in a polarization-maintaining fiber to which dephasing noise is relevant so that a two-dimensional DFS is appropriate. A low bit error rate 5.4% is achieved by encoding one-qubit information onto the biphoton state in spite of significant polarization fluctuation. Our scalable frequency-based DFS has a natural affinity for wavelength division multiplexing in fiber communication by design and as such is extensible to multi-particle entanglement.
我们利用光子频率自由度,展示了通过单模光纤(SMF)实现的贝尔态的退相干容忍传输。为此,一个略微非简并的偏振纠缠单态| ⟩=(|HV⟩ - |VH⟩)/2,被定位在单模光纤中作为去极化通道,由于光纤持续弯曲而受到随机噪声影响。双光子拍频和量子态层析成像共同验证了集体退相干的不存在,表明| ⟩是与单模光纤相关的一维无退相干子空间(DFS)。我们的无退相干子空间中光子流的高效拆分和合并有助于在时域中超越无退相干子空间。这促使我们尝试实现基于无退相干子空间的双光子量子比特容错光纤传输。双光子BB84协议在与相位噪声相关的保偏光纤中实现,因此二维无退相干子空间是合适的。尽管存在显著的偏振波动,但通过将单比特信息编码到双光子态上,实现了5.4%的低误码率。我们基于频率的可扩展无退相干子空间在设计上与光纤通信中的波分复用具有天然的亲和力,因此可扩展到多粒子纠缠。