A base ball of mass `200 g` is moving with velocity of `3 xx 10^(3) cm s^(-1)` .If we can locte the base ball with an error equal to the magnitude of the wavelength of the light used `(5000 Å)` how wil the uncertainty in momentum be used with the total momentum of the base ball?

A base ball of mass `200 g` is moving with velocity of `3 xx 10^(3) cm

1.	A base ball of mass `200 g` is moving with velocity of `3 xx 10^(3) cm s^(-1)` .If we can locte the base ball with an error equal to the magnitude of the wavelength of the light used `(5000 Å)` how wil the uncertainty in momentum be used with the total momentum of the base ball?
Answer» Momentum of the basic ball = mv `p = 200 xx 10 = 6 xx 10^(5) cm g s^(-1)` `Delta p Delta x ge h//4pi` `Delta p ge (h)/(4pi Delta x) ( Deltax = 5000 xx 10^(-8) = 5 xx 10^(-5))` ` (DeltaP)/Pge (6.626 xx 10^(-27))/(4 xx 3.14 xx 5 xx 10^(-5))` `( Delta p)/(p) ge (6.626 xx 10^(-27))/(4 xx 3.14 xx 5 xx 10^(-5))` `= 1.756 xx 10^(-29)`

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A base ball of mass `200 g` is moving with velocity of `3 xx 10^(3) cm s^(-1)` .If we can locte the base ball with an error equal to the magnitude of the wavelength of the light used `(5000 Å)` how wil the uncertainty in momentum be used with the total momentum of the base ball?

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