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dc.contributor.advisorDas, Tanmoy
dc.contributor.authorAdhikary, Priyo
dc.date.accessioned2021-12-31T10:13:24Z
dc.date.available2021-12-31T10:13:24Z
dc.date.submitted2021
dc.identifier.urihttps://etd.iisc.ac.in/handle/2005/5570
dc.description.abstractThe phase diagrams of the heavy fermion, transition-metal (copper-, nickel-) oxides materials have a wide variety of different phases. It is believed that, the strong correlation among electrons governs most of the phases in these materials, and hence, they are called strongly correlated systems. The purpose of the thesis is to understand the microscopic origin of the superconductivity in the strongly correlated systems and subsequently compare/predict the experimental outcomes of the theory. It is well known that heavy fermion, transition-metal oxide systems are unconventional superconductors. However, contrary to the old results, new experiments performed on the heavy fermion systems point towards a fully gapped conventional superconductivity. Similarly, in the cuprate superconductors, the d-wave symmetry of the superconducting order parameter is well known in the copper-oxide layer. However, counter-evidence of nodeless superconductivity is observed in the underdoped region of cuprates. Recently superconductivity is observed in infinite-layer nickelates NdNiO2 and PrNiO2, a maximum Tc ~ 15 K. Based on the above-mentioned experimental motivations, we formulate a new mechanism of superconductivity in the heavy fermion system where attractive potential between impurity and conduction electrons are mediated by emergent boson fields in the slave-boson theory. We developed a self-consistent theory for the superconducting gap and found good agreement with experimental results. We found a s-wave like, fully gapped superconducting channel. For the cuprates and nickelates, we use spin-fluctuation mediated pairing potential, with multi-band random phase approximation to predict pairing symmetries of the gap function. In YBCO cuprate, we found that, if we dope the CuO chain state while keeping the CuO4 plane state’s doping fixed, the pairing symmetry change from the nodal d-wave to a nodal f-wave symmetry. We explore superconductivity in RNiO2 (R = Nd, La, Pr), based on two orbitals, Ni dx2−y2 , and R axial orbital. The axial orbital consists of Nd/La d, and Ni dz2 orbitals. We found that the superconductivity is orbital-selective in RNiO2. In this thesis, we use analytical and numerical methods to analyse the superconducting properties relevant from theoretical and experimental perspectives.en_US
dc.language.isoen_USen_US
dc.rightsI grant Indian Institute of Science the right to archive and to make available my thesis or dissertation in whole or in part in all forms of media, now hereafter known. I retain all proprietary rights, such as patent rights. I also retain the right to use in future works (such as articles or books) all or part of this thesis or dissertationen_US
dc.subjectTheoretical Condensed matter Physicsen_US
dc.subjectSuperconductivityen_US
dc.subjectHeavy-fermionsen_US
dc.subjectCupratesen_US
dc.subjectNickelatesen_US
dc.subject.classificationResearch Subject Categories::NATURAL SCIENCES::Physics::Condensed matter physicsen_US
dc.titleSuperconductivity in strongly correlated systems: Heavy fermions, Cuprates, Infinite-layer Nickelatesen_US
dc.typeThesisen_US
dc.degree.namePhDen_US
dc.degree.levelDoctoralen_US
dc.degree.grantorIndian Institute of Scienceen_US
dc.degree.disciplineFaculty of Scienceen_US


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