We propose and demonstrate an architecture that achieves passive coherent combination of two femtosecond fiber chirped-pulse amplifiers. The setup consists in the use of a well-balanced amplifying Sagnac interferometer. The experiment shows that the temporal, spectral, and spatial qualities of each beam are retained, with the generation of 250 fs pulses at 35 MHz repetition rate, an uncompressed average power of 10 W, and a combining efficiency of 96%. The behavior of this architecture in the presence of high accumulated nonlinear phase is investigated.

Download full-text PDF

Source
http://dx.doi.org/10.1364/OL.36.004023DOI Listing

Publication Analysis

Top Keywords

passive coherent
8
femtosecond fiber
8
fiber chirped-pulse
8
chirped-pulse amplifiers
8
coherent beam
4
beam combining
4
combining femtosecond
4
amplifiers propose
4
propose demonstrate
4
demonstrate architecture
4

Similar Publications

Physical activity and content in a variety of physically active learning: an observational case study of real-world practices.

Front Sports Act Living

January 2025

Department of Sports, Physical Education and Outdoor Studies, Faculty of Humanities, Sports and Educational Science, University of South-Eastern Norway, Bø, Norway.

Background: Research on physically active learning (PAL) has mainly been investigated experimentally, where interventions have been introduced to study effects on, for example, physical activity (PA) levels. This might undermine real-world contexts and realistic PA levels when teachers have sustained PAL in their regular teaching practice for several years. The purpose of this study was to observe and describe the organization and content of a variety of teaching where PAL was enacted by experienced teachers and to describe the corresponding PA levels and PA intensity in real-world practices.

View Article and Find Full Text PDF

Background: This study examines the elements of efficiency and coherent development in passive defense among healthcare managers for disaster management in Iran.

Materials And Methods: The study employs a qualitative method using conventional content analysis from 2021 to 2023. A purposive sample of 25 healthcare managers with experience in passive defense is selected.

View Article and Find Full Text PDF

People synchronize their movements more easily to rhythms with tempi closer to their preferred motor rates than with faster or slower ones. More efficient coupling at one's preferred rate, compared to faster or slower rates, should be associated with lower cognitive demands and better attentional entrainment, as predicted by dynamical system theories of perception and action. We show that synchronizing one's finger taps to metronomes at tempi outside of their preferred rate evokes larger pupil sizes, a proxy for noradrenergic attention, relative to passively listening.

View Article and Find Full Text PDF

Quantum Error-Correcting Codes with a Covariant Encoding.

Phys Rev Lett

December 2024

Inria Paris, Quandela, 7 Rue Léonard de Vinci, 91300 Massy, France.

Given some group G of logical gates, for instance the Clifford group, what are the quantum encodings for which these logical gates can be implemented by simple physical operations, described by some physical representation of G? We study this question by constructing a general form of such encoding maps. For instance, we recover that the ⟦5,1,3⟧ and Steane codes admit transversal implementations of the binary tetrahedral and binary octahedral groups, respectively. For bosonic encodings, we show how to obtain the GKP and cat qudit encodings by considering the appropriate groups, and essentially the simplest physical implementations.

View Article and Find Full Text PDF

Passive and active suppression of transduced noise in silicon spin qubits.

Nat Commun

January 2025

Department of Physics and Astronomy, and Institute of Applied Physics, Seoul National University, Seoul, Korea.

Addressing and mitigating decoherence sources plays an essential role in the development of a scalable quantum computing system, which requires low gate errors to be consistently maintained throughout the circuit execution. While nuclear spin-free materials, such as isotopically purified silicon, exhibit intrinsically promising coherence properties for electron spin qubits, the omnipresent charge noise, when converted to magnetic noise under a strong magnetic field gradient, often hinders stable qubit operation within a time frame comparable to the data acquisition time. Here, we demonstrate both open- and closed-loop suppression techniques for the transduced noise in silicon spin qubits, resulting in a more than two-fold (ten-fold) improvement of the inhomogeneous coherence time (Rabi oscillation quality) that leads to a single-qubit gate fidelity of over 99.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!