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The hallmark of active matter is the autonomous directed motion of its microscopic constituents driven by consumption of energy resources.
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2008
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2009
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2009
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2010
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2010
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2012
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2012
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Tim Sanchez, Daniel T N Chen, Stephen J DeCamp, Michael Heymann, and Zvonimir Dogic, “Spontaneous motion in hierarchically assembled active matter,” Nature 491
2012
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2012
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Udo Seifert, “Stochastic thermodynamics, fluctuation theorems and molecular machines,” Rep. Prog. Phys. 75
2012
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Elsen Tjhung, Davide Marenduzzo, and Michael E. Cates, “Spontaneous symmetry breaking in active droplets provides a generic route to motility,” Proc. Natl. Acad. Sci. USA 109
2012
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2012
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Henricus H. Wensink, Jörn Dunkel, Sebastian Heidenreich, Knut Drescher, Raymond E. Goldstein, Hartmut Löwen, and Julia M. Yeomans, “Meso-scale turbulence in living fluids,” Proc. Natl. Acad. Sci. USA 109
2012
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M. C. Marchetti, J. F. Joanny, S. Ramaswamy, T. B. Liverpool, J. Prost, Madan Rao, and R. Aditi Simha, “Hydrodynamics of soft active matter,” Rev. Mod. Phys. 85
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2017
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Sriram Ramaswamy, “Active matter,” J. Stat. Mech. 2017
2017
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Leticia F Cugliandolo and Vivien Lecomte, “Rules of calculus in the path integral representation of white noise langevin equations: the onsager–machlup approach,” J. Phys. A: Math. Theor. 50
2017
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Étienne Fodor and M. C Marchetti, “The statistical physics of active matter: From self-catalytic colloids to living cells,” Physica A 504
2018
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Elsen Tjhung, Cesare Nardini, and Michael E. Cates, “Cluster phases and bubbly phase separation in active fluids: Reversal of the ostwald process,” Phys. Rev. X 8
2018
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2013
Cited alongside, same era.
Ivo Buttinoni, Julian Bialké, Felix Kümmel, Hartmut Löwen, Clemens Bechinger, and Thomas Speck, “Dynamical clustering and phase separation in suspensions of self-propelled colloidal particles,” Phys. Rev. Lett. 110
2013
Cited alongside, same era.
Jeremie Palacci, Stefano Sacanna, Asher Preska Steinberg, David J. Pine, and Paul M. Chaikin, “Living crystals of light-activated colloidal surfers,” Science 339
2013
Cited alongside, same era.
Julian Bialké, Hartmut Löwen, and Thomas Speck, “Microscopic theory for the phase separation of self-propelled repulsive disks,” EPL (Europhys. Lett.) 103
2013
Cited alongside, same era.
M. E. Cates and J. Tailleur, “When are active brownian particles and run-and-tumble particles equivalent? consequences for motility-induced phase separation,” EPL (Europhys. Lett.) 101
2013
Cited alongside, same era.
Sumesh P. Thampi, Ramin Golestanian, and Julia M. Yeomans, “Velocity correlations in an active nematic,” Phys. Rev. Lett. 111
2013
Cited alongside, same era.
Jörn Dunkel, Sebastian Heidenreich, Knut Drescher, Henricus H. Wensink, Markus Bär, and Raymond E. Goldstein, “Fluid dynamics of bacterial turbulence,” Phys. Rev. Lett. 110
2013
Cited alongside, same era.
Eric Bertin, Hugues Chaté, Francesco Ginelli, Shradha Mishra, Anton Peshkov, and Sriram Ramaswamy, “Mesoscopic theory for fluctuating active nematics,” New J. Phys. 15
2013
Cited alongside, same era.
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Siddharth Paliwal, Jeroen Rodenburg, René van Roij, and Marjolein Dijkstra, “Chemical potential in active systems: predicting phase equilibrium from bulk equations of state?” New J. Phys. 20
2018
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Daniel S. Seara, Vikrant Yadav, Ian Linsmeier, A. Pasha Tabatabai, Patrick W. Oakes, S. M. Ali Tabei, Shiladitya Banerjee, and Michael P. Murrell, “Entropy production rate is maximized in non-contractile actomyosin,” Nat. Commun. 9
2018
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F S Gnesotto, F Mura, J Gladrow, and C P Broedersz, “Broken detailed balance and non-equilibrium dynamics in living systems: a review,” Rep. Prog. Phys. 81
2018
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Tamir Admon, Saar Rahav, and Yael Roichman, “Experimental realization of an information machine with tunable temporal correlations,” Phys. Rev. Lett. 121
2018
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Suraj Shankar and M. Cristina Marchetti, “Hidden entropy production and work fluctuations in an ideal active gas,” Phys. Rev. E 98
2018
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Patrick Pietzonka and Udo Seifert, “Entropy production of active particles and for particles in active baths,” J. Phys. A: Math. Theor. 51
2018
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Thomas Speck, “Active brownian particles driven by constant affinity,” EPL (Europhys. Lett.) 123
2018
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Pierre Gaspard and Raymond Kapral, “Fluctuating chemohydrodynamics and the stochastic motion of self-diffusiophoretic particles,” J. Chem. Phys. 148
2018
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Lokrshi Prawar Dadhichi, Ananyo Maitra, and Sriram Ramaswamy, “Origins and diagnostics of the nonequilibrium character of active systems,” J. Stat. Mech. 2018
2018
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Frank Jülicher, Stephan W Grill, and Guillaume Salbreux, “Hydrodynamic theory of active matter,” Rep. Prog. Phys. 81
2018
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Michael Czajkowski, Dapeng Bi, M. Lisa Manning, and M. Cristina Marchetti, “Hydrodynamics of shape-driven rigidity transitions in motile tissues,” Soft Matter 14
2018
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Riccardo Rao and Massimiliano Esposito, “Conservation laws shape dissipation,” New J. Phys. 20
2018
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Takayuki Ariga, Michio Tomishige, and Daisuke Mizuno, “Nonequilibrium energetics of molecular motor kinesin,” Phys. Rev. Lett. 121
2018
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Wylie W. Ahmed, É Fodor, Maria Almonacid, Matthias Bussonnier, Marie-Hélène Verlhac, Nir Gov, Paolo Visco, Frédéric van Wijland, and Timo Betz, “Active mechanics reveal molecular-scale force kinetics in living oocytes,” Biophys. J. 114
2018
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D. Martin, C. Nardini, M. E. Cates, and É. Fodor, “Extracting maximum power from active colloidal heat engines,” EPL (Europhys. Lett.) 121
2018
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L. Rapp, F. Bergmann, and W. Zimmermann, “Systematic extension of the cahn-hilliard model for motility-induced phase separation,” Eur. Phys. J. E 42
2019
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Jules Guioth and Eric Bertin, “Lack of an equation of state for the nonequilibrium chemical potential of gases of active particles in contact,” J. Chem. Phys. 150
2019
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Emanuele Crosato, Mikhail Prokopenko, and Richard E. Spinney, “Irreversibility and emergent structure in active matter,” Phys. Rev. E 100
2019
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Takahiro Nemoto, Étienne Fodor, Michael E. Cates, Robert L. Jack, and Julien Tailleur, “Optimizing active work: Dynamical phase transitions, collective motion, and jamming,” Phys. Rev. E 99
2019
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Laura Tociu, Étienne Fodor, Takahiro Nemoto, and Suriyanarayanan Vaikuntanathan, “How dissipation constrains fluctuations in nonequilibrium liquids: Diffusion, structure, and biased interactions,” Phys. Rev. X 9
2019
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Lennart Dabelow, Stefano Bo, and Ralf Eichhorn, “Irreversibility in active matter systems: Fluctuation theorem and mutual information,” Phys. Rev. X 9
2019
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Ignacio A Martínez, Gili Bisker, Jordan M Horowitz, and Juan MR Parrondo, “Inferring broken detailed balance in the absence of observable currents,” Nature communications 10
2019
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Romain Mueller, Julia M. Yeomans, and Amin Doostmohammadi, “Emergence of active nematic behavior in monolayers of isotropic cells,” Phys. Rev. Lett. 122
2019
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Jonathan Rodenfels, Karla M. Neugebauer, and Jonathon Howard, “Heat oscillations driven by the embryonic cell cycle reveal the energetic costs of signaling,” Developmental Cell 48
2019
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Pierre Gaspard and Raymond Kapral, “Thermodynamics and statistical mechanics of chemically powered synthetic nanomotors,” Advances in Physics: X 4
2019
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Patrick Pietzonka, Étienne Fodor, Christoph Lohrmann, Michael E. Cates, and Udo Seifert, “Autonomous engines driven by active matter: Energetics and design principles,” Phys. Rev. X 9
2019
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Sihan Chen, Tomer Markovich, and Fred C. MacKintosh, “Motor-free contractility in active gels,” Phys. Rev. Lett. 125
2020
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Étienne Fodor, Takahiro Nemoto, and Suriyanarayanan Vaikuntanathan, “Dissipation controls transport and phase transitions in active fluids: Mobility, diffusion and biased ensembles,” New J. Phys. 22
2020
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Colin Scheibner, Anton Souslov, Debarghya Banerjee, Piotr Surówka, William T. M. Irvine, and Vincenzo Vitelli, “Odd elasticity,” Nat. Phys. 16
2020
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Timothy Ekeh, Michael E. Cates, and Étienne Fodor, “Thermodynamic cycles with active matter,” Phys. Rev. E 102
2020
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