混沌とした空洞における古典的および量子的なショットノイズの交差点
S Oberholzer1, E V Sukhorukov, C Schönenberger
1Institut für Physik, Universität Basel, Klingelbergstrasse 82, 4056 Basel, Switzerland. Christian.Schoenberger@unibas.ch
Nature
|February 15, 2002
まとめ
研究者は,メソスコピック導体内のショットノイズが,電子の動きが古典的に混沌としたときに消失することを実験的に検証しました. これは,電子の停留時間が短い混沌とした空洞で発生し,量子散乱から決定的運動に移行します.
科学分野:
- 凝縮物質物理学 凝縮物質物理学
- 量子トランスポートとは
背景:
- 電気電荷の離散性から発生するショットキーノイズ (Schottky noise) は,1918年に予測されました.
- 量子一致の電荷運動を含むメソスコピック導体におけるショットノイズは,最近の研究焦点である.
研究 の 目的:
- 典型的な混沌としたメソスコピック導体におけるショットノイズの消失の予測を実験的に検証する.
- シャットノイズの混沌とした空洞における電子の停留時間の役割を調査する.
主な方法:
- 電子の停留時間を制御するために混沌とした空洞を利用する.
- 量子散乱と古典的決定的運動のレジムにシステムを調整する.
主要な成果:
- ショットノイズは,電子の動きが量子散乱 (長い滞在時間) によって"塗りつぶされる"ときに観察されます.
- ショットノイズは,電子の動きが古典的決定論 (短い滞在時間) になると消える.
結論:
- 古典的に混沌としたメソスコピックシステムにおける銃弾の騒音抑制の実験的確認.
- 量子効果と古典的なカオスダイナミクスが電荷輸送の変動に影響することを実証.
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