「$usemunpfunc」:修訂間差異

出自DDCC TCAD TOOL Manual
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   <math>\mu_{n,temp}=\mu_0 exp(\beta\sqrt{E})</math>,  <math>\mu_{p,temp}=\mu_0 exp(\beta\sqrt{E})</math>  
   <math>\mu_{n,temp}=\mu_0 exp(\beta\sqrt{E})</math>,  <math>\mu_{p,temp}=\mu_0 exp(\beta\sqrt{E})</math>  
   <math> \frac{1}{\mu_n} = \frac{1}{\mu_{n,temp}} + \frac{1}{\mu_{n,sat}} </math>
   <math> \frac{1}{\mu_n} = \frac{1}{\mu_{n,temp}} + \frac{1}{\mu_{n,sat}} </math>
  <math> \frac{1}{\mu_p} = \frac{1}{\mu_{p,temp}} + \frac{1}{\mu_{p,sat}} </math>

於 2018年3月26日 (一) 02:14 的修訂

Function for organic material. We usually assume the carrier mobility is depend on electrical field and follow Poole-Frenkel field dependent mobility equation.

Mobility follow this equation


μ=μ0exp(βE)

Where 

  • μ0 is the zero-field mobility
  • β is the factor of mobility increasing
  • E is the electric field.


Format

$usemunpfunc
1 μe βe μh βh


Parameter Explanation

μn=μ0exp(βE),  μp=μ0exp(βE) 
  • μe : electron zero-field mobility. (cm2eV1s1)
  • βe : electron beta. (eV1/2)
  • μh : hole zero-field mobility. (cm2eV1s1)
  • βh : hole beta. (eV1/2)


$usemunpfunc
11 μe βe μh βh μn,sat μp,sat


Parameter Explanation type:

  • μe : electron zero-field mobility. (cm2eV1s1)
  • βe : electron beta. (eV1/2)
  • μh : hole zero-field mobility. (cm2eV1s1)
  • βh : hole beta. (eV1/2)
  • μn,sat saturate electron mobility
  • μp,sat saturate hole mobility
 μn,temp=μ0exp(βE),  μp,temp=μ0exp(βE) 
 1μn=1μn,temp+1μn,sat
 1μp=1μp,temp+1μp,sat