Repulsive Interaction Solution

STEP 0: Pre-Calculation Summary
Formula Used
Repulsive Interaction = Repulsive Interaction Constant/(Distance of Closest Approach^Born Exponent)
ER = B/(r0^nborn)
This formula uses 4 Variables
Variables Used
Repulsive Interaction - (Measured in Joule) - The Repulsive Interaction is between atoms acts over a very short range, but is very large when distances are short.
Repulsive Interaction Constant - The Repulsive Interaction Constant is the constant scaling the strength of the repulsive interaction.
Distance of Closest Approach - (Measured in Meter) - Distance of Closest Approach is the distance to which an alpha particle comes closer to the nucleus.
Born Exponent - The Born Exponent is a number between 5 and 12, determined experimentally by measuring the compressibility of the solid, or derived theoretically.
STEP 1: Convert Input(s) to Base Unit
Repulsive Interaction Constant: 40000 --> No Conversion Required
Distance of Closest Approach: 60 Angstrom --> 6E-09 Meter (Check conversion ​here)
Born Exponent: 0.9926 --> No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
ER = B/(r0^nborn) --> 40000/(6E-09^0.9926)
Evaluating ... ...
ER = 5795181739688.58
STEP 3: Convert Result to Output's Unit
5795181739688.58 Joule --> No Conversion Required
FINAL ANSWER
5795181739688.58 5.8E+12 Joule <-- Repulsive Interaction
(Calculation completed in 00.020 seconds)

Credits

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Created by Prerana Bakli
University of Hawaiʻi at Mānoa (UH Manoa), Hawaii, USA
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Verified by Akshada Kulkarni
National Institute of Information Technology (NIIT), Neemrana
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Lattice Energy Calculators

Lattice Energy using Born Lande Equation
​ LaTeX ​ Go Lattice Energy = -([Avaga-no]*Madelung Constant*Charge of Cation*Charge of Anion*([Charge-e]^2)*(1-(1/Born Exponent)))/(4*pi*[Permitivity-vacuum]*Distance of Closest Approach)
Born Exponent using Born Lande Equation
​ LaTeX ​ Go Born Exponent = 1/(1-(-Lattice Energy*4*pi*[Permitivity-vacuum]*Distance of Closest Approach)/([Avaga-no]*Madelung Constant*([Charge-e]^2)*Charge of Cation*Charge of Anion))
Electrostatic Potential Energy between pair of Ions
​ LaTeX ​ Go Electrostatic Potential Energy between Ion Pair = (-(Charge^2)*([Charge-e]^2))/(4*pi*[Permitivity-vacuum]*Distance of Closest Approach)
Repulsive Interaction
​ LaTeX ​ Go Repulsive Interaction = Repulsive Interaction Constant/(Distance of Closest Approach^Born Exponent)

Repulsive Interaction Formula

​LaTeX ​Go
Repulsive Interaction = Repulsive Interaction Constant/(Distance of Closest Approach^Born Exponent)
ER = B/(r0^nborn)

What is Born–Landé equation?

The Born–Landé equation is a means of calculating the lattice energy of a crystalline ionic compound. In 1918 Max Born and Alfred Landé proposed that the lattice energy could be derived from the electrostatic potential of the ionic lattice and a repulsive potential energy term. The ionic lattice is modeled as an assembly of hard elastic spheres which are compressed together by the mutual attraction of the electrostatic charges on the ions. They achieve the observed equilibrium distance apart due to a balancing short range repulsion.

How to Calculate Repulsive Interaction?

Repulsive Interaction calculator uses Repulsive Interaction = Repulsive Interaction Constant/(Distance of Closest Approach^Born Exponent) to calculate the Repulsive Interaction, The Repulsive Interaction is between atoms acts over a very short range, but is very large when distances are short. Repulsive Interaction is denoted by ER symbol.

How to calculate Repulsive Interaction using this online calculator? To use this online calculator for Repulsive Interaction, enter Repulsive Interaction Constant (B), Distance of Closest Approach (r0) & Born Exponent (nborn) and hit the calculate button. Here is how the Repulsive Interaction calculation can be explained with given input values -> 5.8E+12 = 40000/(6E-09^0.9926).

FAQ

What is Repulsive Interaction?
The Repulsive Interaction is between atoms acts over a very short range, but is very large when distances are short and is represented as ER = B/(r0^nborn) or Repulsive Interaction = Repulsive Interaction Constant/(Distance of Closest Approach^Born Exponent). The Repulsive Interaction Constant is the constant scaling the strength of the repulsive interaction, Distance of Closest Approach is the distance to which an alpha particle comes closer to the nucleus & The Born Exponent is a number between 5 and 12, determined experimentally by measuring the compressibility of the solid, or derived theoretically.
How to calculate Repulsive Interaction?
The Repulsive Interaction is between atoms acts over a very short range, but is very large when distances are short is calculated using Repulsive Interaction = Repulsive Interaction Constant/(Distance of Closest Approach^Born Exponent). To calculate Repulsive Interaction, you need Repulsive Interaction Constant (B), Distance of Closest Approach (r0) & Born Exponent (nborn). With our tool, you need to enter the respective value for Repulsive Interaction Constant, Distance of Closest Approach & Born Exponent and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
How many ways are there to calculate Repulsive Interaction?
In this formula, Repulsive Interaction uses Repulsive Interaction Constant, Distance of Closest Approach & Born Exponent. We can use 2 other way(s) to calculate the same, which is/are as follows -
  • Repulsive Interaction = Total Energy of Ion-(Madelung Energy)
  • Repulsive Interaction = Total Energy of Ion-(-(Charge^2)*([Charge-e]^2)*Madelung Constant)/(4*pi*[Permitivity-vacuum]*Distance of Closest Approach)
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