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INFRARED SPECTROSCOPY - L.2.6 Fourier Transform Infrared Spectroscopy (FTIR)

INFRARED SPECTROSCOPY - L.2.5 IR Spectrophotometer instrumentation (Double beam spectrophotometer)

INFRARED SPECTROSCOPY- L.2.4 Fundamental modes of vibration of H2O and CO2-application of IR spectra

INFRARED SPECTROSCOPY - L.2.3 Diatomic Vibrating Rotator

INFRARED SPECTROSCOPY - L.2.2 Anharmonic oscillator-fundamentals, overtones & combinations-Problem

INFRARED SPECTROSCOPY - L.2.1 Vibrations of simple harmonic oscillator and zero-point energy-

Quantum Mechanics made simple-notes .9 Matrix Mechanics - Hilbert space (continuation)

MICROWAVE SPECTROSCOPY - L.1.9 Problems on Rotational spectroscopy

MICROWAVE SPECTROSCOPY - L.1.8 Stark effect of linear&spherical top molecules in microwave spectra

MICROWAVE SPECTROSCOPY - L.1.7 Information derived from rotational spectra

MICROWAVE SPECTROSCOPY - L.1.6 Instrumentation for Microwave spectroscopy

MICROWAVE SPECTROSCOPY - L.1.5 Hyperfine structure and Quadrupole moment of linear molecules

MICROWAVE SPECTROSCOPY - L.1.4 Polyatomic molecules-linear- symmetric, asymmetric top molecules

MICROWAVE SPECTROSCOPY - L.1.3 Intensity of spectral lines in rotational spectra

MICROWAVE SPECTROSCOPY - L.1.2 Effect of isotopic substitution - Non rigid rotator

MICROWAVE SPECTROSCOPY - L.1.1 Rotational spectra of diatomic molecules - Rigid Rotor

Quantum Mechanics made simple-notes .8 Matrix Mechanics

Quantum Mechanics made simple-notes.7 Simultaneous measurability of observables&Uncertainty relation

Quantum Mechanics made simple-notes .6 Postulates of Quantum Mechanics

Quantum Mechanics made simple-notes .5 Ehrenfest theorem

Quantum Mechanics made simple-notes .4 Conservation of Probability current

Quantum Mechanics made simple-notes .3 Schrödinger time independent equation and a related problem

Quantum Mechanics made simple-notes .2 Schrödinger time dependent equation

Quantum Mechanics made simple-notes .1 Interpretation (Physical significance) of wave function