<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Philip Walther | LIP6 - Équipe QI</title><link>https://qi.lip6.fr/fr/people/philip-walther/</link><atom:link href="https://qi.lip6.fr/fr/people/philip-walther/index.xml" rel="self" type="application/rss+xml"/><description>Philip Walther</description><generator>Hugo Blox Builder (https://hugoblox.com)</generator><language>fr</language><copyright>© 2022 LIP6 Quantum Information Team</copyright><lastBuildDate>Fri, 19 Apr 2024 00:00:00 +0000</lastBuildDate><image><url>https://qi.lip6.fr/media/icon_hu_bdeccd9e706ea09d.png</url><title>Philip Walther</title><link>https://qi.lip6.fr/fr/people/philip-walther/</link></image><item><title>Experimental superposition of a quantum evolution with its time reverse</title><link>https://qi.lip6.fr/fr/publication/3858633-experimental-superposition-of-a-quantum-evolution-with-its-time-reverse/</link><pubDate>Fri, 19 Apr 2024 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3858633-experimental-superposition-of-a-quantum-evolution-with-its-time-reverse/</guid><description>&lt;p&gt;In the macroscopic world, time is intrinsically asymmetric, flowing in a specific direction, from past to future. However, the same is not necessarily true for quantum systems, as some quantum processes produce valid quantum evolutions under time reversal. Supposing that such processes can be probed in both time directions, we can also consider quantum processes probed in a coherent superposition of forwards and backwards time directions. This yields a broader class of quantum processes than the ones considered so far in the literature, including those with indefinite causal order. In this work, we demonstrate for the first time an operation belonging to this new class: the quantum time flip. Using a photonic realisation of this operation, we apply it to a game formulated as a discrimination task between two sets of operators. This game not only serves as a witness of an indefinite time direction, but also allows for a computational advantage over strategies using a fixed time direction, and even those with an indefinite causal order.&lt;/p&gt;</description></item><item><title>Higher-order Process Matrix Tomography of a passively-stable Quantum SWITCH</title><link>https://qi.lip6.fr/fr/publication/4116459-higher-order-process-matrix-tomography-of-a-passively-stable-quantum-switch/</link><pubDate>Tue, 30 May 2023 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4116459-higher-order-process-matrix-tomography-of-a-passively-stable-quantum-switch/</guid><description>&lt;p&gt;The field of indefinite causal order (ICO) has seen a recent surge in interest. Much of this research has focused on the quantum SWITCH, wherein multiple parties act in a superposition of different orders in a manner transcending the quantum circuit model. This results in a new resource for quantum protocols, and is exciting for its relation to issues in foundational physics. The quantum SWITCH is also an example of a higher-order quantum operation, in that it not only transforms quantum states, but also other quantum operations. To date, no higher-order quantum operation has been completely experimentally characterized. Indeed, past work on the quantum SWITCH has confirmed its ICO by measuring causal witnesses or demonstrating resource advantages, but the complete process matrix has only been described theoretically. Here, we perform higher-order quantum process tomography. However, doing so requires exponentially many measurements with a scaling worse than standard process tomography. We overcome this challenge by creating a new passively-stable fiber-based quantum SWITCH using active optical elements to deterministically generate and manipulate time-bin encoded qubits. Moreover, our new architecture for the quantum SWITCH can be readily scaled to multiple parties. By reconstructing the process matrix, we estimate its fidelity and tailor different causal witnesses directly for our experiment. To achieve this, we measure a set of tomographically complete settings, that also spans the input operation space. Our tomography protocol allows for the characterization and debugging of higher-order quantum operations with and without an ICO, while our experimental time-bin techniques could enable the creation of a new realm of higher-order quantum operations with an ICO.&lt;/p&gt;</description></item><item><title>Demonstration of a quantum SWITCH in a Sagnac configuration</title><link>https://qi.lip6.fr/fr/publication/4029186-demonstration-of-a-quantum-switch-in-a-sagnac-configuration/</link><pubDate>Tue, 22 Nov 2022 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4029186-demonstration-of-a-quantum-switch-in-a-sagnac-configuration/</guid><description>&lt;p&gt;The quantum SWITCH is an example of a process with an indefinite causal structure, and has attracted attention for its ability to outperform causally ordered computations within the quantum circuit model. To date, realisations of the quantum SWITCH have relied on optical interferometers susceptible to minute path length fluctuations, complicating their design, limiting their performance and posing an obstacle to extending the quantum SWITCH to multiple parties. In this Letter we overcome these limitations by demonstrating an intrinsically stable quantum SWITCH utilizing a common-path geometry facilitated by a novel reciprocal and universal $\mathrm{SU}(2)$ polarization gadget. We certify our design by successfully performing a channel discrimination task with near unity success probability.&lt;/p&gt;</description></item></channel></rss>