Quantum teleportation of an elemental silicon nanophotonic CNOT gate
Kai-Chi Chang, Xiang Cheng, Felix Ribuot-Hirsch, Murat Can Sarihan, Yujie Chen, Jaime Gonzalo Flor Flores, Mingbin Yu, Patrick Guo-Qiang Lo, Dim-Lee Kwong, and Chee Wei Wong

TL;DR
This paper demonstrates the first on-chip quantum teleportation of a CNOT gate using silicon photonics, achieving high fidelity and enabling scalable distributed quantum computing modules.
Contribution
It presents the experimental realization of a teleported on-chip CNOT gate, a key step towards scalable, distributed quantum computing architectures.
Findings
Achieved 93.1% average truth table fidelity for the teleported CNOT.
Obtained 87.0% average quantum state fidelity across input states.
Created four Bell states with 86.2% fidelity using the non-local CNOT.
Abstract
Large-scale quantum computers possess the capacity to effectively tackle practical problems that can be insurmountable for classical computers. The main challenge in building these quantum computers is to realize scalable modules for remote qubits and entanglement. By assembling small, specialized parts into a larger architecture, the modular approach mitigates complexity and uncertainty. Such a distributed architecture requires non-local quantum gate operations between remote qubits. An essential method for implementing such operations, known as quantum gate teleportation, requires only local operations, classical communication, and shared entanglement. Till today, the quantum gate teleportation using a photonic chip has remained elusive. Here we experimentally demonstrate the quantum teleportation of an on-chip controlled-NOT (CNOT) gate, assisted with the scalable silicon chip…
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