`v = 0.48` for `lamda = 6.424 nm` then what is v' for `lambda = 4nm`

White light is used in a Young's double slit experiment. Find the minimum order of the violet fringe (lamda = 400 nm) which overlaps with a red fringe (lamda = 700 nm) .

Light from two sources, lambda_(1)= 623 nm and lambda_(2) = 488 nm , is incident on a diffraction grating that has 5550 "lines" // cm . What is the angular separation, lambda_(1)-lambda_(2) of the second order maxima of the two waves?

A spectrograph's trihedral prism is manufactured from glass whose refractive index varies with wavelength as n = A + B//lambda^(2) , where A and B are constats, with B being equal to 0.010mum^(2) . Making use of the formula from the foregoing problem, find: (a) how the resolving power of the prism depends on lambda , calculate the value of lambda//delta lambda in the vicinity of lambda_(1) = 434nm and lambda_(2) = 656nm if the width of the prism's base is b = 5.0 cm , (b) the width of the prism's base capacble of resolving the yellow doublet of sodium (589.0 and 589.6nm ).

If phi = 3 eV and lambda = 248 nm then de-broglie wavelength is

In Young's double slit experiment , light waves of lambda = 5.4 xx 10^(2) nm and lambda = 6.85 xx 10^(1) nm are used in turn , keeping the same geometry of the set up . Calculate the ratio of the fringe widths in the two cases .

The K_(alpha) X-ray emission line of lungsten accurs at lambda = 0.021 nm . What is the energy difference between K and L levels in the atom?

You are given an electron with a de-Broglie wavelength of lambda = 76.3 nm . What is the Kelvin temperature of this electron?

In a set of experiment on a hydrogen on a hypotherical one-electron atom, the wavelength of the photons emitted from transition ending in the ground state (n = 1) are shown in the energy level diagram lambda_(5 to 1) = 73.86 nm lambda_(4 to 1) = 75.63 nm lambda_(3 to 1) = 79.76 nm lambda_(2 to 1) = 94.54 nm If an electron made a transition from n = 4 to n = 2 level, the wavelength of the light that it would emit is nearly

In YDSE when 'lambda = 700 nm' then total number of figure b/w O & P is 16. When 'lambda = 400nm' then total number of figure b/ O & P is

The wavelength of light in a medium is lamda=lamda_0/mu where lamda is the wavelength in vacuum. A beam of red light (lamda_0=720 nm) enters into water The wavelength in water is lamda=lamda_0/mu=540 nm. To a person under water does this light appear green?