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相关概念视频

Continuous Charge Distributions01:17

Continuous Charge Distributions

6.8K
Imagine a bucket of water. It contains many molecules, of the order of 1026 molecules. Thus, although it contains discrete elements (molecules) at the microscopic level, macroscopically, it can be considered continuous. Small volume elements of water, infinitesimal compared to the bulk of the bucket's volume, still contain many molecules. Under this framework, quantized matter is approximated as continuous for practical purposes.
The electric charge can also be subjected to an analogical...
6.8K
Carrier Generation and Recombination01:22

Carrier Generation and Recombination

521
Carrier generation is the process by which electron-hole pairs (EHPs) are created within the semiconductor. In direct-bandgap semiconductors, such as gallium arsenide (GaAs), this occurs efficiently when energy absorption prompts valence electrons to leap into the conduction band, leaving behind holes.
This process is given by the generation rate G and is efficient due to the conservation of momentum between the valence band maximum and conduction band minimum.
Indirect generation involves an...
521
Carrier Transport01:21

Carrier Transport

405
The generation of electrical current in semiconductors is fundamentally driven by two mechanisms: drift and diffusion. These processes are essential for the functionality and performance of semiconductor-based devices.
Drift Current:
The drift of charge carriers is started by an external electric field (E). Charged particles, such as electrons and holes, experience an acceleration between collisions with lattice atoms. For electrons, this results in a drift velocity (vd) given by:
405
Power Factor Correction01:20

Power Factor Correction

156
The power transmission to a factory involves the transfer of apparent power, a combination of active and reactive power. The power factor measures how effectively electrical power is converted into useful work output. The ratio of the real power (KW) that does the work to the apparent power (KVA) supplied to the circuit.
156
Transmission-Line Differential Equations01:26

Transmission-Line Differential Equations

235
Transmission lines are essential components of electrical power systems. They are characterized by the distributed nature of resistance (R), inductance (L), and capacitance (C) per unit length. To analyze these lines, differential equations are employed to model the variations in voltage and current along the line.
Line Section Model
A circuit representing a line section of length Δx helps in understanding the transmission line parameters. The voltage V(x) and current i(x) are measured...
235
Network Function of a Circuit01:25

Network Function of a Circuit

264
Frequency response analysis in electrical circuits provides vital insights into a circuit's behavior as the frequency of the input signal changes. The transfer function, a mathematical tool, is instrumental in understanding this behavior. It defines the relationship between phasor output and input and comes in four types: voltage gain, current gain, transfer impedance, and transfer admittance. The critical components of the transfer function are the poles and zeros.
264

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相关实验视频

Updated: Jun 6, 2025

Generation and Coherent Control of Pulsed Quantum Frequency Combs
06:42

Generation and Coherent Control of Pulsed Quantum Frequency Combs

Published on: June 8, 2018

8.9K

强制载体扰动为基于芯片的连续变量量子密钥分配系统打开了一个漏洞.

Lang Li, Peng Huang, Tao Wang

    Optics express
    |November 22, 2024
    PubMed
    概括

    基于芯片的连续可变量子密钥分配 (CVQKD) 系统中的量子效率可能会动态变化,造成安全风险. 本研究介绍了一个探测器模型和防御策略,以解决这些漏洞,以实现更安全的CVQKD开发.

    科学领域:

    • 量子信息科学 量子信息科学
    • 综合光子学 综合光子学
    • 网络安全 网络安全

    背景情况:

    • 连续变量量子密钥分配 (CVQKD) 系统为通信提供了增强的安全性.
    • 传统的CVQKD假设稳定的探测器量子效率,这是小型化系统的局限性.
    • 在芯片上的集成面临着诸如波导不均和兴奋剂等挑战,影响探测器性能.

    研究的目的:

    • 研究基于芯片的CVQKD系统中动态量子效率变化的影响.
    • 提出一个实用的探测器模型来模拟这些效应.
    • 开发防御策略来应对由可变量子效率引起的安全威胁.

    主要方法:

    • 为CVQKD开发一个实用的基于芯片的探测器模型.
    • 使用拟议模型进行广泛的模拟,以分析量子效率变化.
    • 制定两种新的防御战略,以减轻安全风险.

    主要成果:

    • 模拟结果证实,可变量子效率引入了基于芯片的CVQKD的重大安全威胁.
    • 拟议的探测器模型准确地反映了现实世界的性能限制.
    • 确定了与动态效率变化相关的特定安全漏洞.

    更多相关视频

    Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators
    09:23

    Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators

    Published on: May 30, 2014

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    A Photonic System for Generating Unconditional Polarization-Entangled Photons Based on Multiple Quantum Interference
    00:07

    A Photonic System for Generating Unconditional Polarization-Entangled Photons Based on Multiple Quantum Interference

    Published on: September 5, 2019

    8.4K

    相关实验视频

    Last Updated: Jun 6, 2025

    Generation and Coherent Control of Pulsed Quantum Frequency Combs
    06:42

    Generation and Coherent Control of Pulsed Quantum Frequency Combs

    Published on: June 8, 2018

    8.9K
    Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators
    09:23

    Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators

    Published on: May 30, 2014

    14.4K
    A Photonic System for Generating Unconditional Polarization-Entangled Photons Based on Multiple Quantum Interference
    00:07

    A Photonic System for Generating Unconditional Polarization-Entangled Photons Based on Multiple Quantum Interference

    Published on: September 5, 2019

    8.4K

    结论:

    • 预校准的,静态量子效率的假设对于基于芯片的CVQKD是无效的.
    • 基于芯片的CVQKD的实际安全考虑需要考虑动态效率变化.
    • 拟议的防御策略为更强大,更安全的集成CVQKD系统提供了途径.