Determination of Energy of I-th State for Maxwell-Boltzmann Statistics Solution

STEP 0: Pre-Calculation Summary
Formula Used
Energy of i-th State = 1/Lagrange's Undetermined Multiplier 'β'*(ln(Number of Degenerate States/Number of particles in i-th State)-Lagrange's Undetermined Multiplier 'α')
εi = 1/β*(ln(g/ni)-α)
This formula uses 1 Functions, 5 Variables
Functions Used
ln - The natural logarithm, also known as the logarithm to the base e, is the inverse function of the natural exponential function., ln(Number)
Variables Used
Energy of i-th State - (Measured in Joule) - Energy of i-th State is defined as the total quantity of energy present in a particular energy state.
Lagrange's Undetermined Multiplier 'β' - (Measured in Joule) - Lagrange's Undetermined Multiplier 'β' is denoted by 1/kT. Where, k= Boltzmann constant, T= temperature.
Number of Degenerate States - Number of Degenerate States can be defined as the number of energy states that have the same energy.
Number of particles in i-th State - Number of particles in i-th State can be defined as the total number of particles present in a particular energy state.
Lagrange's Undetermined Multiplier 'α' - Lagrange's Undetermined Multiplier 'α' is denoted by μ/kT, Where μ= chemical potential; k= Boltzmann constant; T= temperature.
STEP 1: Convert Input(s) to Base Unit
Lagrange's Undetermined Multiplier 'β': 0.00012 Joule --> 0.00012 Joule No Conversion Required
Number of Degenerate States: 3 --> No Conversion Required
Number of particles in i-th State: 0.00016 --> No Conversion Required
Lagrange's Undetermined Multiplier 'α': 5.0324 --> No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
εi = 1/β*(ln(g/ni)-α) --> 1/0.00012*(ln(3/0.00016)-5.0324)
Evaluating ... ...
εi = 40054.5752616546
STEP 3: Convert Result to Output's Unit
40054.5752616546 Joule --> No Conversion Required
FINAL ANSWER
40054.5752616546 40054.58 Joule <-- Energy of i-th State
(Calculation completed in 00.004 seconds)

Credits

Creator Image
Created by SUDIPTA SAHA
ACHARYA PRAFULLA CHANDRA COLLEGE (APC), KOLKATA
SUDIPTA SAHA has created this Calculator and 100+ more calculators!
Verifier Image
Verified by Soupayan banerjee
National University of Judicial Science (NUJS), Kolkata
Soupayan banerjee has verified this Calculator and 900+ more calculators!

Distinguishable Particles Calculators

Determination of Entropy using Sackur-Tetrode Equation
​ LaTeX ​ Go Standard Entropy = Universal Gas Constant*(-1.154+(3/2)*ln(Relative Atomic Mass)+(5/2)*ln(Temperature)-ln(Pressure/Standard Pressure))
Total Number of Microstates in All Distributions
​ LaTeX ​ Go Total Number of Microstates = ((Total Number of Particles+Number of Quanta of Energy-1)!)/((Total Number of Particles-1)!*(Number of Quanta of Energy!))
Translational Partition Function
​ LaTeX ​ Go Translational Partition Function = Volume*((2*pi*Mass*[BoltZ]*Temperature)/([hP]^2))^(3/2)
Translational Partition Function using Thermal de Broglie Wavelength
​ LaTeX ​ Go Translational Partition Function = Volume/(Thermal de Broglie Wavelength)^3

Determination of Energy of I-th State for Maxwell-Boltzmann Statistics Formula

​LaTeX ​Go
Energy of i-th State = 1/Lagrange's Undetermined Multiplier 'β'*(ln(Number of Degenerate States/Number of particles in i-th State)-Lagrange's Undetermined Multiplier 'α')
εi = 1/β*(ln(g/ni)-α)

What is Statistical Thermodynamics?

Statistical thermodynamics is a theory that uses molecular properties to predict the behavior of macroscopic quantities of compounds. While the origins of statistical thermodynamics predate the development of quantum mechanics, the modern development of statistical thermodynamics assumes that the quantized energy levels associated with a particular system are known. From these energy-level data, a temperature-dependent quantity called the partition function can be calculated. From the partition function, all of the thermodynamic properties of the system can be calculated. Statistical thermodynamics has also been applied to the general problem of predicting reaction rates. This application is called transition state theory or the theory of absolute reaction rates.

How to Calculate Determination of Energy of I-th State for Maxwell-Boltzmann Statistics?

Determination of Energy of I-th State for Maxwell-Boltzmann Statistics calculator uses Energy of i-th State = 1/Lagrange's Undetermined Multiplier 'β'*(ln(Number of Degenerate States/Number of particles in i-th State)-Lagrange's Undetermined Multiplier 'α') to calculate the Energy of i-th State, The Determination of Energy of I-th State for Maxwell-Boltzmann Statistics formula is defined as the amount of energy in a particular state. Energy of i-th State is denoted by εi symbol.

How to calculate Determination of Energy of I-th State for Maxwell-Boltzmann Statistics using this online calculator? To use this online calculator for Determination of Energy of I-th State for Maxwell-Boltzmann Statistics, enter Lagrange's Undetermined Multiplier 'β' (β), Number of Degenerate States (g), Number of particles in i-th State (ni) & Lagrange's Undetermined Multiplier 'α' (α) and hit the calculate button. Here is how the Determination of Energy of I-th State for Maxwell-Boltzmann Statistics calculation can be explained with given input values -> 40054.58 = 1/0.00012*(ln(3/0.00016)-5.0324).

FAQ

What is Determination of Energy of I-th State for Maxwell-Boltzmann Statistics?
The Determination of Energy of I-th State for Maxwell-Boltzmann Statistics formula is defined as the amount of energy in a particular state and is represented as εi = 1/β*(ln(g/ni)-α) or Energy of i-th State = 1/Lagrange's Undetermined Multiplier 'β'*(ln(Number of Degenerate States/Number of particles in i-th State)-Lagrange's Undetermined Multiplier 'α'). Lagrange's Undetermined Multiplier 'β' is denoted by 1/kT. Where, k= Boltzmann constant, T= temperature, Number of Degenerate States can be defined as the number of energy states that have the same energy, Number of particles in i-th State can be defined as the total number of particles present in a particular energy state & Lagrange's Undetermined Multiplier 'α' is denoted by μ/kT, Where μ= chemical potential; k= Boltzmann constant; T= temperature.
How to calculate Determination of Energy of I-th State for Maxwell-Boltzmann Statistics?
The Determination of Energy of I-th State for Maxwell-Boltzmann Statistics formula is defined as the amount of energy in a particular state is calculated using Energy of i-th State = 1/Lagrange's Undetermined Multiplier 'β'*(ln(Number of Degenerate States/Number of particles in i-th State)-Lagrange's Undetermined Multiplier 'α'). To calculate Determination of Energy of I-th State for Maxwell-Boltzmann Statistics, you need Lagrange's Undetermined Multiplier 'β' (β), Number of Degenerate States (g), Number of particles in i-th State (ni) & Lagrange's Undetermined Multiplier 'α' (α). With our tool, you need to enter the respective value for Lagrange's Undetermined Multiplier 'β', Number of Degenerate States, Number of particles in i-th State & Lagrange's Undetermined Multiplier 'α' and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
Let Others Know
Facebook
Twitter
Reddit
LinkedIn
Email
WhatsApp
Copied!