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Research PaperResearchia:202604.21075

Engineered broadband Purcell protection using a shared $Π$-filter for multiplexed superconducting qubits

Samuel D. Escribano

Abstract

We propose a broadband Purcell-protection scheme based on a single shared filter integrated directly into the feedline, enabling simultaneous protection of multiple qubits in a compact architecture with minimal hardware overhead. The filter consists of two open-ended stubs connected by an in-line transmission line, forming a $Π$ geometry, and operates via engineered passive microwave interference that suppresses the real part of the environmental admittance over a wide frequency window. Circuit ...

Submitted: April 21, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

We propose a broadband Purcell-protection scheme based on a single shared filter integrated directly into the feedline, enabling simultaneous protection of multiple qubits in a compact architecture with minimal hardware overhead. The filter consists of two open-ended stubs connected by an in-line transmission line, forming a ΠΠ geometry, and operates via engineered passive microwave interference that suppresses the real part of the environmental admittance over a wide frequency window. Circuit simulations and finite-element modeling show strong suppression of transmission within the target band (the qubit's frequencies) while preserving the readout and reset modes of the multiplexed architecture. For realistic device parameters, the proposed design yields Purcell-limited relaxation times exceeding 11 ms over a frequency span of approximately 1.51.5 GHz, which can be further extended with straightforward modifications of the design. Our results establish the ΠΠ-filter as a compact and scalable solution for broadband impedance engineering in superconducting quantum circuits, compatible with standard dispersive readout protocols.


Source: arXiv:2604.18387v1 - http://arxiv.org/abs/2604.18387v1 PDF: https://arxiv.org/pdf/2604.18387v1 Original Link: http://arxiv.org/abs/2604.18387v1

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Date:
Apr 21, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
Comments:
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