Coincidence double-tip scanning tunneling spectroscopy
Abstract
The development of new experimental techniques for direct measurement of many-body correlations is crucial for unraveling the mysteries of strongly correlated electron systems. In this work, we propose a coincidence double-tip scanning tunneling spectroscopy (STS) that enables direct probing of spatially resolved dynamical two-body correlations of sample electrons. Unlike conventional single-tip scanning tunneling microscopy, the double-tip STS employs a double-tip scanning tunneling microscope (STM) equipped with two independently controlled tips, each biased at distinct voltages ( and ). By simultaneously measuring the quantum tunneling currents and at locations and , we obtain a coincidence tunneling current correlation . Differentiating this coincidence tunneling current correlation with respect to the two bias voltages yields a coincidence dynamical conductance. Through the development of a nonequilibrium theory, we demonstrate that this coincidence dynamical conductance is proportional to a contour-ordered second-order current correlation function. For the sample electrons in a nearly free Fermi liquid state, the coincidence dynamical conductance captures two correlated dynamical electron propagation processes: (i) from to (or vice versa) driven by , and (ii) from to (or vice versa) driven by . For the sample electrons in a superconducting state, additional propagation channels emerge from the superconducting condensate, coexisting with the above normal electron propagation processes. Thus, the coincidence double-tip STS provides direct access to spatially resolved dynamical two-body correlations, offering a powerful tool for investigating strongly correlated electron systems.
Cite
@article{arxiv.2507.17532,
title = {Coincidence double-tip scanning tunneling spectroscopy},
author = {Yuehua Su and Guoya Zhang and Dezhong Cao and Chao Zhang},
journal= {arXiv preprint arXiv:2507.17532},
year = {2025}
}
Comments
22 pages, 2 figures