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{{DISPLAYTITLE:{{#invoke:Wd|label|Q4610}}}}
<b>
{{#invoke:Wd|description|Q4610}}
</b>
{{#invoke:TA4TK:myTest|getImageWithLegend}}
<br>
<br>
{{#invoke:TA4TK:myTest|buildDescription|Q4610}}
The {{#invoke:Wd|label|Q4610}} contains the following mathematical expressions:<br>
{{#invoke:TA4TK:myTest|getFormulations|Q4610}}
<!-- TODO: get link on the formulations name -->
<br>
<br>
<br>
The {{#invoke:Wd|label|Q4610}} contains the following mathematical expressions with quantities:<br>
{{#invoke:TA4TK:myTest|getFormulationsWithQuantities|Q4610}}
<br>
<br>
Test quantity::
{{#invoke:TA4TK:myTest|extractQuantities}}
The {{#invoke:Wd|label|Q4610}} is applied by the following computational tasks:
{{#sparql:
PREFIX target1: <https://portal.mardi4nfdi.de/entity/Q6534342>
SELECT ?Computational_Task 
WHERE {
  target1: wdt:P147 ?URL.
  ?URL rdfs:label ?Label
  BIND(CONCAT("<a href=", STR(?URL),  ">", STR(?Label) ,"</a>") as ?Computational_Task)
}
| endpoint=https://query.portal.mardi4nfdi.de/proxy/wdqs/bigdata/namespace/wdq/sparql
| chart=bordercloud.visualization.DataTable
| log=2
}}
<!-- TODO:
create a corresponding LUA call and define our own rendering of the formulations
-->
<!-- TODO:
Show quantities involved in a single formulation similar to this one and/or define our own renderer:
https://portal.mardi4nfdi.de/wiki/Template:Formula
-->   
<!-- TODO:
TODO: The Research Problem (Spin Qbit Shuttling #invoke) is contained in the Research Field (Semiconductor Physics #invoke).
TODO: Burkhard: add assumptions in backend. -> This will be displayed  in frontend.
Research Field:
- Semiconductor physics: https://portal.mardi4nfdi.de/wiki/Item:Q6534344
Research Problem:
- Spin Qbit Shuttling: https://portal.mardi4nfdi.de/wiki/Item:Q6534343
Mathematical Model:
- Electron Shuttling Model: https://portal.mardi4nfdi.de/wiki/Item:Q6534342
Assumptions:
- https://portal.mardi4nfdi.de/wiki/Item:Q6534305 (Time-Dependent Schrödinger Equation generalizes Time-Independent Schrödinger Equation)
- https://portal.mardi4nfdi.de/wiki/Item:Q6534349 (Liouville-von Neumann Equation) generalizes Time-Dependent Schrödinger Equation)
--------------------------------------------------------------------------
<!-- '''The rest is about testing more around and can be ignored!!!!!'''
{{#invoke:TA4TK:myTest|hello}}
{{#invoke:TA4TK:myTest|hello}}


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<math>\sin x</math>
<math>\sin x</math>
{{#sparql:
SELECT ?description
# where Q4610 refers to Electron Shuttling Model
# where P896 refers to long description
WHERE {
      wd:Q4610 wdt:P896 ?description.
}
| chart=bordercloud.visualization.DataTable
| log=2
}}




{{#invoke:TA4TK:myTest|buildList|Q3871}}
{{#invoke:TA4TK:myTest|buildList|Q3871}}


{{#invoke:Wd|label}}
 
 
<gallery widths=480 heights=200>
File:3082a.jpg|Schematic illustration of the Si-QuBus device. The clavier gate electrodes on the top surface generate a moving array of QD potentials.
File:3082b.jpg|Top view on the Si-QuBus with the four different clavier gate sets highlighted in color.
</gallery>
 
 
{{
#if:{{#statements:P1088|from=Q4610}} | {{#statements:P1088|from=Q4610}}
}}
 
{{#invoke:TA4TK:myTest|getImage}}
 
The {{#invoke:Wd|label|Q4610}} contains the following mathematical expressions:
 
{{#sparql:
    SELECT ?Formula ?defining_formula ?in_defining_formula
# Q4610 refers to Electron Shuttling Model
# P715 refers to contains
# P29 refers to defining formula
# P597 refers to in defining formula
WHERE {
      wd:Q4610 wdt:P715 ?IDFormula.
      ?IDFormula  rdfs:label ?Formula.
      ?IDFormula wdt:P29 ?defining_formula.
      ?IDFormula wdt:P597 ?in_defining_formula
}
| chart=bordercloud.visualization.DataTable
| log=2
}}
 
{{#sparql:
SELECT ?Formula ?defining_formulation ?IDFormula
# Q4610 refers to Electron Shuttling Model
# P715 refers to contains
# P29 refers to defining formulation
WHERE {
      wd:Q4610 wdt:P715 ?IDFormula.
      ?IDFormula  rdfs:label ?Formula.
      ?IDFormula wdt:P29 ?defining_formulation
}
| chart=bordercloud.visualization.DataTable
| log=2
}}
 
 
 
-->

Latest revision as of 14:49, 13 February 2025



quantum dynamical model of an electron to be shuttled in a silicon quBus device

The clavier gate electrodes on the top surface generate a moving array of QD potentials
Top view on the Si-QuBus with the four different clavier gate sets highlighted in color




Quantum dynamical modeling of an electron to be shuttled, governed by the electric potential generated by the clavier (and other) gates in a Silicon QuBus device. Spin and valley states as well as the respective interactions are neglected. Moreover, the current model is limited to the coherent wave packet evolution and disregards the effects of noise and dissipation.

The Electron Shuttling Model contains the following mathematical expressions:

Schrödinger Equation (Time Dependent) it|ψ(t)=H^|ψ(t)
Schrödinger Equation (Time Independent) H^|ψn=En|ψn
Laplace Equation For The Electric Potential (ϵsϕ)=0
Quantum Hamiltonian (Electric Charge) H=H0+qϕ
Dirichlet Boundary Condition For Electric Potential ϕ(r,t)|Γk=ϕ0+Uk(t)
Neumann Boundary Condition For Electric Potential nϕ(r,t)|ΓN=0
Periodic Boundary Condition For Electric Potential ϕ(r,t)=ϕ(r+L,t)




The Electron Shuttling Model contains the following mathematical expressions with quantities:

Schrödinger Equation (Time Dependent) it|ψ(t)=H^|ψ(t)
H symbol represents:
Schrödinger Equation (Time Dependent) it|ψ(t)=H^|ψ(t)
ψ(t) symbol represents:
Schrödinger Equation (Time Dependent) it|ψ(t)=H^|ψ(t)
symbol represents:
Schrödinger Equation (Time Dependent) it|ψ(t)=H^|ψ(t)
t symbol represents:
Schrödinger Equation (Time Independent) H^|ψn=En|ψn
H symbol represents:
Schrödinger Equation (Time Independent) H^|ψn=En|ψn
ψn symbol represents:
Schrödinger Equation (Time Independent) H^|ψn=En|ψn
En symbol represents:
Schrödinger Equation (Time Independent) H^|ψn=En|ψn
n symbol represents:
Laplace Equation For The Electric Potential (ϵsϕ)=0
ϕ symbol represents:
Laplace Equation For The Electric Potential (ϵsϕ)=0
ϵs symbol represents:
Quantum Hamiltonian (Electric Charge) H=H0+qϕ
ϕ symbol represents:
Quantum Hamiltonian (Electric Charge) H=H0+qϕ
q symbol represents:
Quantum Hamiltonian (Electric Charge) H=H0+qϕ
H0 symbol represents:
Dirichlet Boundary Condition For Electric Potential ϕ(r,t)|Γk=ϕ0+Uk(t)
ϕ symbol represents:
Dirichlet Boundary Condition For Electric Potential ϕ(r,t)|Γk=ϕ0+Uk(t)
Uk symbol represents:
Dirichlet Boundary Condition For Electric Potential ϕ(r,t)|Γk=ϕ0+Uk(t)
t symbol represents:
Dirichlet Boundary Condition For Electric Potential ϕ(r,t)|Γk=ϕ0+Uk(t)
Γk symbol represents:
Neumann Boundary Condition For Electric Potential nϕ(r,t)|ΓN=0
ΓN symbol represents:
Neumann Boundary Condition For Electric Potential nϕ(r,t)|ΓN=0
ϕ symbol represents:
Neumann Boundary Condition For Electric Potential nϕ(r,t)|ΓN=0
t symbol represents:
Periodic Boundary Condition For Electric Potential ϕ(r,t)=ϕ(r+L,t)
ϕ symbol represents:
Periodic Boundary Condition For Electric Potential ϕ(r,t)=ϕ(r+L,t)
L symbol represents:
Periodic Boundary Condition For Electric Potential ϕ(r,t)=ϕ(r+L,t)
t symbol represents:




Test quantity:: Quantum Hamiltonian Operator

The Electron Shuttling Model is applied by the following computational tasks: