quantum$66046$ - traduction vers Anglais
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quantum$66046$ - traduction vers Anglais

QUANTIZED UNIT OF ELECTRICAL CONDUCTANCE
Quantum of conductance; Resistance quantum; Quantum of resistance; Quantum conductance

quantum      
n. quantità, quanto; quota, parte, porzione; quantum
quantum leap         
1989–1993 AMERICAN SCIENCE FICTION TELEVISION SERIES
Quantum Leap (television); Quantam Leap; Evil Leaper; Abe Pollack; Quantum Leap (TV Series); Music From The Television Series Quantum Leap; Music From The Televsion Series Quantum Leap; Quantum leap; Quantum Leap (TV series); Quantum Leap (television series); Quantum Leap: The Novel; Quantum Leap: Too Close for Comfort (novel); Quantum Leap: The Wall (novel); Quantum Leap: Prelude (novel); Quantum Leap: Random Measures (novel); Draft:Quantum Leap (2022 TV series)
salto gigantesco
quantum theory         
WIKIMEDIA DISAMBIGUATION PAGE
Quantum Theory; Quantum theory (disambiguation); Quantam Theory
teoria dei quanti

Définition

quantum computing

Wikipédia

Conductance quantum

The conductance quantum, denoted by the symbol G0, is the quantized unit of electrical conductance. It is defined by the elementary charge e and Planck constant h as:

G 0 = 2 e 2 h {\displaystyle G_{0}={\frac {2e^{2}}{h}}} = 7.748091729...×10−5 S.

It appears when measuring the conductance of a quantum point contact, and, more generally, is a key component of the Landauer formula, which relates the electrical conductance of a quantum conductor to its quantum properties. It is twice the reciprocal of the von Klitzing constant (2/RK).

Note that the conductance quantum does not mean that the conductance of any system must be an integer multiple of G0. Instead, it describes the conductance of two quantum channels (one channel for spin up and one channel for spin down) if the probability for transmitting an electron that enters the channel is unity, i.e. if transport through the channel is ballistic. If the transmission probability is less than unity, then the conductance of the channel is less than G0. The total conductance of a system is equal to the sum of the conductances of all the parallel quantum channels that make up the system.