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Poled-fibre phase modulator for efficient high-dimensional quantum measurements

Authors: Nayda Guerrero, Nelson Villalba, Gustavo H. dos Santos, Carlos J. Salazar, Cristobal Melo, Fernando Castillo, Jaime Cari\~ne, Guilherme B. Xavier, Esteban S. G\'omez, Stephen P. Walborn, Jo\~ao Pereira, Gabriel Saavedra, and Gustavo LimaPublished: 2026-08-04Paper ID: 2608.04112Category: quant-phLicense: CC BY 4.0

Abstract

Efficient detection of quantum states underpins advanced device-independent quantum-information protocols that provide the ultimate level of security for tasks including quantum random number generation and quantum key distribution (QKD). High-dimensional encoding is a natural route to boost the performance of such protocols, offering enhanced noise resilience and higher information capacity, yet their practical implementation remains challenging. A key experimental bottleneck in higher dimensions is the typical need of active modulators for basis selection, which incur substantial optical losses and polarization-sensitive operation. Poled optical fiber phase modulators (PFPMs) are a fiber-native electro-optic technology that naturally addresses these challenges, combining sub-dB insertion loss, intrinsic polarization independence, and direct compatibility with standard telecommunications fiber. Here we report the first use of a PFPM for active quantum-state measurements in a fully fiber-integrated platform. Basis selection in our receiver for four-dimensional qudits is achieved using a single PFPM, substantially simplifying the receiver architecture. As a benchmark, we perform a four-dimensional QKD session and obtain a finite secret-key rate per pulse that, to the best of our knowledge, surpasses all previously reported QKD demonstrations. Our results establish poled-fiber electro-optic modulation as a broadly applicable platform for high-efficiency detection in fiber-integrated quantum information processing.

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