Calculate the uncertainty in the position `(Delta x)` of an electron if `Delta v is 0.1 %` .Take the velocity of electron `= 2.2 xx10^(6) ms^(-1)` and mass of electron as `9.108 xx 10^(-31)kg`

Calculate the uncertainty in the position `(Delta x)` of an electron i

1.	Calculate the uncertainty in the position `(Delta x)` of an electron if `Delta v is 0.1 %` .Take the velocity of electron `= 2.2 xx10^(6) ms^(-1)` and mass of electron as `9.108 xx 10^(-31)kg`
Answer» Gives `Delta v = 0.1 % `of the velocity of the electron `= (0.1)/(100) xx 2.2 xx 10^(6) m s^(-1)` `Delta x xx m Delta v = (h)/(4pi)` or `Delta x = (6.63 xx 10^(-34) Js)/( 4 xx 3.14 xx 9.108 xx 10^(-31) kg xx 2.2 xx 10^(2) ms^(-1))` `= 0.02624765 xx 10^%(-6) m` `= 262.4765 xx 10^(-10) m` Since `Delta x ` is much longer than the atomic diameter `(+10^(-10)m`1 the uncertainty principle is applicable in this case.

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Calculate the uncertainty in the position `(Delta x)` of an electron if `Delta v is 0.1 %` .Take the velocity of electron `= 2.2 xx10^(6) ms^(-1)` and mass of electron as `9.108 xx 10^(-31)kg`

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