Astrophysics with the Laser Interferometer Space Antenna

IF 26.3 2区 物理与天体物理 Q1 PHYSICS, PARTICLES & FIELDS Living Reviews in Relativity Pub Date : 2023-03-14 DOI:10.1007/s41114-022-00041-y
Pau Amaro-Seoane, Jeff Andrews, Manuel Arca Sedda, Abbas Askar, Quentin Baghi, Razvan Balasov, Imre Bartos, Simone S. Bavera, Jillian Bellovary, Christopher P. L. Berry, Emanuele Berti, Stefano Bianchi, Laura Blecha, Stéphane Blondin, Tamara Bogdanović, Samuel Boissier, Matteo Bonetti, Silvia Bonoli, Elisa Bortolas, Katelyn Breivik, Pedro R. Capelo, Laurentiu Caramete, Federico Cattorini, Maria Charisi, Sylvain Chaty, Xian Chen, Martyna Chruślińska, Alvin J. K. Chua, Ross Church, Monica Colpi, Daniel D’Orazio, Camilla Danielski, Melvyn B. Davies, Pratika Dayal, Alessandra De Rosa, Andrea Derdzinski, Kyriakos Destounis, Massimo Dotti, Ioana Duţan, Irina Dvorkin, Gaia Fabj, Thierry Foglizzo, Saavik Ford, Jean-Baptiste Fouvry, Alessia Franchini, Tassos Fragos, Chris Fryer, Massimo Gaspari, Davide Gerosa, Luca Graziani, Paul Groot, Melanie Habouzit, Daryl Haggard, Zoltan Haiman, Wen-Biao Han, Alina Istrate, Peter H. Johansson, Fazeel Mahmood Khan, Tomas Kimpson, Kostas Kokkotas, Albert Kong, Valeriya Korol, Kyle Kremer, Thomas Kupfer, Astrid Lamberts, Shane Larson, Mike Lau, Dongliang Liu, Nicole Lloyd-Ronning, Giuseppe Lodato, Alessandro Lupi, Chung-Pei Ma, Tomas Maccarone, Ilya Mandel, Alberto Mangiagli, Michela Mapelli, Stéphane Mathis, Lucio Mayer, Sean McGee, Berry McKernan, M. Coleman Miller, David F. Mota, Matthew Mumpower, Syeda S. Nasim, Gijs Nelemans, Scott Noble, Fabio Pacucci, Francesca Panessa, Vasileios Paschalidis, Hugo Pfister, Delphine Porquet, John Quenby, Angelo Ricarte, Friedrich K. Röpke, John Regan, Stephan Rosswog, Ashley Ruiter, Milton Ruiz, Jessie Runnoe, Raffaella Schneider, Jeremy Schnittman, Amy Secunda, Alberto Sesana, Naoki Seto, Lijing Shao, Stuart Shapiro, Carlos Sopuerta, Nicholas C. Stone, Arthur Suvorov, Nicola Tamanini, Tomas Tamfal, Thomas Tauris, Karel Temmink, John Tomsick, Silvia Toonen, Alejandro Torres-Orjuela, Martina Toscani, Antonios Tsokaros, Caner Unal, Verónica Vázquez-Aceves, Rosa Valiante, Maurice van Putten, Jan van Roestel, Christian Vignali, Marta Volonteri, Kinwah Wu, Ziri Younsi, Shenghua Yu, Silvia Zane, Lorenz Zwick, Fabio Antonini, Vishal Baibhav, Enrico Barausse, Alexander Bonilla Rivera, Marica Branchesi, Graziella Branduardi-Raymont, Kevin Burdge, Srija Chakraborty, Jorge Cuadra, Kristen Dage, Benjamin Davis, Selma E. de Mink, Roberto Decarli, Daniela Doneva, Stephanie Escoffier, Poshak Gandhi, Francesco Haardt, Carlos O. Lousto, Samaya Nissanke, Jason Nordhaus, Richard O’Shaughnessy, Simon Portegies Zwart, Adam Pound, Fabian Schussler, Olga Sergijenko, Alessandro Spallicci, Daniele Vernieri, Alejandro Vigna-Gómez
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Davies,&nbsp;Pratika Dayal,&nbsp;Alessandra De Rosa,&nbsp;Andrea Derdzinski,&nbsp;Kyriakos Destounis,&nbsp;Massimo Dotti,&nbsp;Ioana Duţan,&nbsp;Irina Dvorkin,&nbsp;Gaia Fabj,&nbsp;Thierry Foglizzo,&nbsp;Saavik Ford,&nbsp;Jean-Baptiste Fouvry,&nbsp;Alessia Franchini,&nbsp;Tassos Fragos,&nbsp;Chris Fryer,&nbsp;Massimo Gaspari,&nbsp;Davide Gerosa,&nbsp;Luca Graziani,&nbsp;Paul Groot,&nbsp;Melanie Habouzit,&nbsp;Daryl Haggard,&nbsp;Zoltan Haiman,&nbsp;Wen-Biao Han,&nbsp;Alina Istrate,&nbsp;Peter H. Johansson,&nbsp;Fazeel Mahmood Khan,&nbsp;Tomas Kimpson,&nbsp;Kostas Kokkotas,&nbsp;Albert Kong,&nbsp;Valeriya Korol,&nbsp;Kyle Kremer,&nbsp;Thomas Kupfer,&nbsp;Astrid Lamberts,&nbsp;Shane Larson,&nbsp;Mike Lau,&nbsp;Dongliang Liu,&nbsp;Nicole Lloyd-Ronning,&nbsp;Giuseppe Lodato,&nbsp;Alessandro Lupi,&nbsp;Chung-Pei Ma,&nbsp;Tomas Maccarone,&nbsp;Ilya Mandel,&nbsp;Alberto Mangiagli,&nbsp;Michela Mapelli,&nbsp;Stéphane Mathis,&nbsp;Lucio Mayer,&nbsp;Sean McGee,&nbsp;Berry McKernan,&nbsp;M. Coleman Miller,&nbsp;David F. Mota,&nbsp;Matthew Mumpower,&nbsp;Syeda S. Nasim,&nbsp;Gijs Nelemans,&nbsp;Scott Noble,&nbsp;Fabio Pacucci,&nbsp;Francesca Panessa,&nbsp;Vasileios Paschalidis,&nbsp;Hugo Pfister,&nbsp;Delphine Porquet,&nbsp;John Quenby,&nbsp;Angelo Ricarte,&nbsp;Friedrich K. Röpke,&nbsp;John Regan,&nbsp;Stephan Rosswog,&nbsp;Ashley Ruiter,&nbsp;Milton Ruiz,&nbsp;Jessie Runnoe,&nbsp;Raffaella Schneider,&nbsp;Jeremy Schnittman,&nbsp;Amy Secunda,&nbsp;Alberto Sesana,&nbsp;Naoki Seto,&nbsp;Lijing Shao,&nbsp;Stuart Shapiro,&nbsp;Carlos Sopuerta,&nbsp;Nicholas C. Stone,&nbsp;Arthur Suvorov,&nbsp;Nicola Tamanini,&nbsp;Tomas Tamfal,&nbsp;Thomas Tauris,&nbsp;Karel Temmink,&nbsp;John Tomsick,&nbsp;Silvia Toonen,&nbsp;Alejandro Torres-Orjuela,&nbsp;Martina Toscani,&nbsp;Antonios Tsokaros,&nbsp;Caner Unal,&nbsp;Verónica Vázquez-Aceves,&nbsp;Rosa Valiante,&nbsp;Maurice van Putten,&nbsp;Jan van Roestel,&nbsp;Christian Vignali,&nbsp;Marta Volonteri,&nbsp;Kinwah Wu,&nbsp;Ziri Younsi,&nbsp;Shenghua Yu,&nbsp;Silvia Zane,&nbsp;Lorenz Zwick,&nbsp;Fabio Antonini,&nbsp;Vishal Baibhav,&nbsp;Enrico Barausse,&nbsp;Alexander Bonilla Rivera,&nbsp;Marica Branchesi,&nbsp;Graziella Branduardi-Raymont,&nbsp;Kevin Burdge,&nbsp;Srija Chakraborty,&nbsp;Jorge Cuadra,&nbsp;Kristen Dage,&nbsp;Benjamin Davis,&nbsp;Selma E. de Mink,&nbsp;Roberto Decarli,&nbsp;Daniela Doneva,&nbsp;Stephanie Escoffier,&nbsp;Poshak Gandhi,&nbsp;Francesco Haardt,&nbsp;Carlos O. Lousto,&nbsp;Samaya Nissanke,&nbsp;Jason Nordhaus,&nbsp;Richard O’Shaughnessy,&nbsp;Simon Portegies Zwart,&nbsp;Adam Pound,&nbsp;Fabian Schussler,&nbsp;Olga Sergijenko,&nbsp;Alessandro Spallicci,&nbsp;Daniele Vernieri,&nbsp;Alejandro Vigna-Gómez","doi":"10.1007/s41114-022-00041-y","DOIUrl":null,"url":null,"abstract":"<div><p>The Laser Interferometer Space Antenna (LISA) will be a transformative experiment for gravitational wave astronomy, and, as such, it will offer unique opportunities to address many key astrophysical questions in a completely novel way. The synergy with ground-based and space-born instruments in the electromagnetic domain, by enabling multi-messenger observations, will add further to the discovery potential of LISA. The next decade is crucial to prepare the astrophysical community for LISA’s first observations. This review outlines the extensive landscape of astrophysical theory, numerical simulations, and astronomical observations that are instrumental for modeling and interpreting the upcoming LISA datastream. To this aim, the current knowledge in three main source classes for LISA is reviewed; ultra-compact stellar-mass binaries, massive black hole binaries, and extreme or interme-diate mass ratio inspirals. The relevant astrophysical processes and the established modeling techniques are summarized. Likewise, open issues and gaps in our understanding of these sources are highlighted, along with an indication of how LISA could help making progress in the different areas. New research avenues that LISA itself, or its joint exploitation with upcoming studies in the electromagnetic domain, will enable, are also illustrated. Improvements in modeling and analysis approaches, such as the combination of numerical simulations and modern data science techniques, are discussed. 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引用次数: 89

Abstract

The Laser Interferometer Space Antenna (LISA) will be a transformative experiment for gravitational wave astronomy, and, as such, it will offer unique opportunities to address many key astrophysical questions in a completely novel way. The synergy with ground-based and space-born instruments in the electromagnetic domain, by enabling multi-messenger observations, will add further to the discovery potential of LISA. The next decade is crucial to prepare the astrophysical community for LISA’s first observations. This review outlines the extensive landscape of astrophysical theory, numerical simulations, and astronomical observations that are instrumental for modeling and interpreting the upcoming LISA datastream. To this aim, the current knowledge in three main source classes for LISA is reviewed; ultra-compact stellar-mass binaries, massive black hole binaries, and extreme or interme-diate mass ratio inspirals. The relevant astrophysical processes and the established modeling techniques are summarized. Likewise, open issues and gaps in our understanding of these sources are highlighted, along with an indication of how LISA could help making progress in the different areas. New research avenues that LISA itself, or its joint exploitation with upcoming studies in the electromagnetic domain, will enable, are also illustrated. Improvements in modeling and analysis approaches, such as the combination of numerical simulations and modern data science techniques, are discussed. This review is intended to be a starting point for using LISA as a new discovery tool for understanding our Universe.

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天体物理学与激光干涉仪空间天线
激光干涉仪空间天线(LISA)将是引力波天文学的一个变革性实验,因此,它将以一种全新的方式提供独特的机会来解决许多关键的天体物理问题。通过实现多信使观测,与地面和太空仪器在电磁领域的协同作用将进一步增加LISA的发现潜力。接下来的十年是为LISA的首次观测做准备的关键时期。这篇综述概述了天体物理理论,数值模拟和天文观测的广泛景观,这些都是建模和解释即将到来的LISA数据流的工具。为此,本文回顾了目前LISA的三个主要源类的知识;超紧凑的恒星质量双星,大质量黑洞双星,以及极端或中等质量比的吸气。总结了相关的天体物理过程和已建立的模拟技术。同样,我们对这些来源的理解中存在的问题和差距也被强调了出来,并指出了LISA如何帮助在不同领域取得进展。LISA本身的新研究途径,或者它与即将到来的电磁领域研究的联合开发,将使,也说明。讨论了建模和分析方法的改进,如数值模拟和现代数据科学技术的结合。这篇综述旨在为利用LISA作为了解我们宇宙的新发现工具提供一个起点。
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来源期刊
Living Reviews in Relativity
Living Reviews in Relativity 物理-物理:粒子与场物理
CiteScore
69.90
自引率
0.70%
发文量
0
审稿时长
20 weeks
期刊介绍: Living Reviews in Relativity is a peer-reviewed, platinum open-access journal that publishes reviews of research across all areas of relativity. Directed towards the scientific community at or above the graduate-student level, articles are solicited from leading authorities and provide critical assessments of current research. They offer annotated insights into key literature and describe available resources, maintaining an up-to-date suite of high-quality reviews, thus embodying the "living" aspect of the journal's title. Serving as a valuable tool for the scientific community, Living Reviews in Relativity is often the first stop for researchers seeking information on current work in relativity. Written by experts, the reviews cite, explain, and assess the most relevant resources in a given field, evaluating existing work and suggesting areas for further research. Attracting readers from the entire relativity community, the journal is useful for graduate students conducting literature surveys, researchers seeking the latest results in unfamiliar fields, and lecturers in need of information and visual materials for presentations at all levels.
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