In this article we argue that thermal reservoirs (baths) are potentially useful resources in processes involving atoms interacting with quantized electromagnetic fields and their applications to quantum technologies. One may try to suppress the bath effects by means of dynamical control, but such control does not always yield the desired results. We wish instead to take advantage of bath effects, that do not obliterate 'quantumness' in the system-bath compound. To this end, three possible approaches have been pursued by us. (i) Control of a quantum system faster than the correlation time of the bath to which it couples: such control allows us to reveal quasi-reversible/coherent dynamical phenomena of quantum open systems, manifest by the quantum Zeno or anti-Zeno effects (QZE or AZE, respectively). Dynamical control methods based on the QZE are aimed not only at protecting the quantumness of the system, but also diagnosing the bath spectra or transferring quantum information via noisy media. By contrast, AZE-based control is useful for fast cooling of thermalized quantum systems. (ii) Engineering the coupling of quantum systems to selected bath modes: this approach, based on field-atom coupling control in cavities, waveguides and photonic band structures, allows one to drastically enhance the strength and range of atom-atom coupling through the mediation of the selected bath modes. More dramatically, it allows us to achieve bath-induced entanglement that may appear paradoxical if one takes the conventional view that coupling to baths destroys quantumness. (iii) Engineering baths with appropriate non-flat spectra: this approach is a prerequisite for the construction of the simplest and most efficient quantum heat machines (engines and refrigerators). We may thus conclude that often thermal baths are 'more friends than foes' in quantum technologies.
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Univ Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, FranceUniv Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, France
Bruscella, Patrice
Bottini, Silvia
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Univ Cote Azur, INSERM, C3M, Nice, FranceUniv Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, France
Bottini, Silvia
Baudesson, Camille
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Univ Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, FranceUniv Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, France
Baudesson, Camille
Pawlotsky, Jean-Michel
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Univ Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, FranceUniv Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, France
Pawlotsky, Jean-Michel
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Feray, Cyrille
Trabucchi, Michele
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Univ Cote Azur, INSERM, C3M, Nice, FranceUniv Paris Est, INSERM, U955, Team Pathophysiol & Therapy Chron Viral Hepatitis, Creteil, France
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Cardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, Wales
EAESP FGV, Av Paulista 548, BR-01310000 Sao Paulo, SP, BrazilCardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, Wales
Wells, Peter
Wang, Xiaobei
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Cardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, WalesCardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, Wales
Wang, Xiaobei
Wang, Liqiao
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Cardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, WalesCardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, Wales
Wang, Liqiao
Liu, Haokun
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Cardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, WalesCardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, Wales
Liu, Haokun
Orsato, Renato
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EAESP FGV, Av Paulista 548, BR-01310000 Sao Paulo, SP, BrazilCardiff Univ, Cardiff Business Sch, Aberconway Bldg,Colum Dr, Cardiff, Wales