Fletcher J D, Park W, Ryu S, See P, Griffiths J P, Jones G A C, Farrer I, Ritchie D A, Sim H-S, Kataoka M
National Physical Laboratory, Teddington, UK.
Department of Physics, Korea Advanced Institute of Science and Technology, Daejeon, Korea.
Nat Nanotechnol. 2023 Jul;18(7):727-732. doi: 10.1038/s41565-023-01369-4. Epub 2023 May 11.
A series of recent experiments have shown that collision of ballistic electrons in semiconductors can be used to probe the indistinguishability of single-electron wavepackets. Perhaps surprisingly, their Coulomb interaction has not been seen due to screening. Here we show Coulomb-dominated collision of high-energy single electrons in counter-propagating ballistic edge states, probed by measuring partition statistics while adjusting the collision timing. Although some experimental data suggest antibunching behaviour, we show that this is not due to quantum statistics but to strong repulsive Coulomb interactions. This prevents the wavepacket overlap needed for fermionic exchange statistics but suggests new ways to utilize Coulomb interactions: microscopically isolated and time-resolved interactions between ballistic electrons can enable the use of the Coulomb interaction for high-speed sensing or gate operations on flying electron qubits.
最近的一系列实验表明,半导体中弹道电子的碰撞可用于探测单电子波包的不可区分性。也许令人惊讶的是,由于屏蔽作用,尚未观察到它们的库仑相互作用。在这里,我们展示了在反向传播的弹道边缘态中高能单电子的库仑主导碰撞,通过在调整碰撞时间的同时测量分配统计来进行探测。尽管一些实验数据表明存在反聚束行为,但我们表明这并非由于量子统计,而是由于强烈的排斥性库仑相互作用。这阻止了费米子交换统计所需的波包重叠,但提出了利用库仑相互作用的新方法:弹道电子之间微观上隔离且时间分辨的相互作用能够使库仑相互作用用于对飞行中的电子量子比特进行高速传感或门操作。