# 卡西米尔效应 — 量子真空力

真空中两块中性导体板因量子真空涨落受限而相互吸引。调节板间距、几何形状和材料以探索力的变化。

> 标准页面: https://elysiatools.com/zh/visualizations/casimir-effect

- **分类:** Physics

## 概述

Interactive Casimir effect visualization based on Hendrik Casimir (1948). Two neutral conducting plates in vacuum attract due to restricted quantum vacuum fluctuations, with force F = −π²ℏcA/(240d⁴). Three visualization panels: (1) Main view showing animated standing wave modes between metallic plates (allowed modes with nodes at surfaces) and vacuum fluctuation particles outside, with force arrows indicating attraction direction; (2) Log-log force vs. separation plot showing curves for perfect conductors, gold, aluminum, and silicon with Lifshitz plasma model corrections, current operating point marker, and d⁻⁴ or d⁻³ slope reference lines; (3) Mode spectrum plot comparing continuous outside mode density (∝ ω²) with discrete inside modes (ω_n = nπc/d), with thermal cutoff line at kT/ℏ. Adjustable parameters: plate separation (10–1000 nm), plate area (0.1–100 μm²), temperature (0–1000 K). Three geometries: parallel plates (F ∝ d⁻⁴), sphere–plate PFA (F ∝ d⁻³), cylinder–plate (F/L ∝ d⁻³). Four materials: perfect conductor, gold (ω_p = 9.0 eV, δ ≈ 22 nm), aluminum (ω_p = 15 eV, δ ≈ 13 nm), silicon (ω_p = 3.9 eV, δ ≈ 51 nm) with Lifshitz correction η = 1/(1 + 4δ/3d + 32δ²/15d²). Thermal effects: classical limit F = −ζ(3)k_B T A/(8πd³) at large separations. Four presets: Classic 1948 (perfect conductor, 100 nm), NEMS 50 nm (gold), MEMS 1 μm (sphere–plate gold), Thermal 300 K (aluminum). Real-time statistics: force, pressure, energy per area, thermal mode count. Educational content covers Casimir's 1948 prediction, zero-point energy and vacuum fluctuations, Lifshitz theory for real materials, thermal corrections, MEMS/NEMS stiction, and cosmological constant problem. Multi-language support (zh, en, es, fr, de, ru, pt).

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