riversongs Posted January 8, 2024 Report Share Posted January 8, 2024 Free Download Quantum Gravity From Gravitational Waves To GravitonsPublished 1/2024MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHzLanguage: English | Size: 5.33 GB | Duration: 6h 40mQuantum Aspects of Gravitation: gravitational waves, polarization, gravitons, vacuum to vacuum transition amplitudesWhat you'll learnQuantization of Gravity in Weak Gravitational Fields: Learn the fundamental principles behind the quantization of gravity within the framework of QFTDerive and Understand Classical and Quantum Aspects of Gravity: Step-by-step derivation of classical and quantum aspects of gravityProbability to find gravitonsSolve Equations for a Massless Spin-2 FieldApply Path Integral and Partition Function in Quantum GravityQuantify Gravitons Using QFTInterpret Polarization of Gravitational WavesDerive properties of tensors and familiarize with them by doing step-by-step calculationsPerturbations of the metric tensorInverse metric tensor expressed as a perturbation seriesRicci tensor expressed as a perturbation seriesDeterminant of the metric tensor expressed as a perturbation seriesRequirementsStrong Foundation in Tensor Calculusknowledge of Einstein field equationsQuantum Field Theory Background: prior exposure to quantum field theory, especially in the language of path integralsUnderstanding of Complex Calculus (in particular, the Residue Theorem)DescriptionThe particles we encounter in nature, whether massive or massless, experience the gravitational interaction due to their energy content. Although gravitational interactions are way smaller than other interactions in nature, the incorporation of gravity in quantum interactions seems important (for example in the description of our early universe or black hole physics).You might hear people addressing the incompatibility between quantum physics and general relativity, as well as the need to make efforts in order to find the desired theory of Quantum Gravity.Sometimes you might hear people refer to String Theory, some other times to Loop Quantum Gravity. These theories have opened up new ways of looking at reality, for sure, but we might still be a long way from being able to test them.On the other hand, under certain circumstances, it is already possible to quantize gravity, by using the well-known quantum field theory approach. This is possible only when we are dealing with weak gravitational fields.In this course, we will see how the concept of graviton emerges quite naturally by considering small deviations of the metric tensor from flat spacetime.In particular, we will start from Einstein field equations of General Relativity, and we will assume that the metric tensor is a small perturbation of the Minkowski metric.From there, we will derive Einstein field equations up to second order of the perturbation.We will see that the equations derived in this way are those of a massless spin-2 field.After that, we proceed to solve the equations and find a way to express the metric tensor.After dealing with the classical equations, we switch to the quantum realm by quantizing the field, recalling the concept of path integral and partition function. The quantum theory will allow us to derive the average number of gravitons and understand the concept of polarization of gravitational waves.In all the derivations it is assumed that the student is familiar with tensor calculus, Einstein field equations, quantum field theory in the language of path integrals, complex calculus. Therefore, it goes without saying that the course is aimed at students who master these concepts. On the other hand, the equations will be derived step by step, leaving the time to digest the concepts.OverviewSection 1: IntroductionLecture 1 Introduction to the courseLecture 2 Summary of the main equations in General RelativitySection 2: Perturbation of the Minkowski metric and its determinantLecture 3 Perturbation of the Minkowski metricLecture 4 Trace of the logarithm of a matrix and its relation to the determinantLecture 5 Square root of the determinant in terms of the perturbation of the metricLecture 6 Rewriting the square root of the determinant part 1Lecture 7 Rewriting the square root of the determinant part 2Lecture 8 Proof of the Jacobi identityLecture 9 Neumann seriesSection 3: Expansion of the inverse metric tensor, connection, and Ricci tensorLecture 10 Expansion of the inverse metric tensorLecture 11 Writing the connection in terms of the perturbation of the metricLecture 12 Rewriting the derivative of the connectionLecture 13 Approximating the Ricci tensor part 1Lecture 14 Approximating the Ricci tensor part 2Section 4: Lagrangian for the perturbed metric and gauge fixingLecture 15 Lagrangian for a massless spin 2 particleLecture 16 Symmetries in the LagrangianLecture 17 Imposing a gauge conditionSection 5: Field equations for the perturbation and gravitational wavesLecture 18 Field equations for the perturbed metricLecture 19 Manipulating the field equations for the perturbed metricLecture 20 Field equations for the vector fieldLecture 21 Gravitational wavesLecture 22 Rewriting the wave equationSection 6: Solutions to the field equations, CausalityLecture 23 Solution to the wave equationLecture 24 Causality of the solutionLecture 25 Full solution to the field equationsSection 7: From the Classical to the Quantum Theory of GravityLecture 26 Vacuum to vacuum transition amplitudeLecture 27 Vacuum to vacuum transition amplitude for a weak gravitational fieldLecture 28 Rewriting the vacuum to vacuum transition amplitude in momentum spaceSection 8: Completeness relation and polarization tensorLecture 29 Completeness formula in Minkowski spaceLecture 30 Using the completeness formulaLecture 31 Simplifying the vacuum to vacuum transition amplitudeLecture 32 Polarization of gravitonsLecture 33 Recovering the classical resultSection 9: Gravitons and polarization of gravitational wavesLecture 34 Average number of gravitonsLecture 35 Polarization of gravitational wavesLecture 36 Visualizing the two types of polarizationSection 10: AppendixLecture 37 Path integral derivationLecture 38 Some intuition behind the path integralLecture 39 Intuition behind the Fourier Transform of Heaviside Step FunctionLecture 40 Derivation of Poisson distributionPhysics Enthusiasts,Advanced Undergraduate and Graduate Students,Researchers and Practitioners,Quantum Gravity Enthusiasts,Curiosity-Driven Learners,Science Educators and Communicators,STEM (Science, Technology, Engineering, and Mathematics) Students: Students pursuing degrees in STEM fields who 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