Research

We are an experimental research group in condensed matter physics. We focus on the investigation of not only steady states but also various non-equilibrium states (e.g., electronic excited states, charge transfer dynamics, spin dynamics, etc) of single molecules, 2D and strongly correlated materials with simultaneous ultrahigh spatial resolution and ultrahigh temporal resolution (“ångström-femtosecond” level) by developing cutting-edge time-resolved scanning probe microscopes including scanning tunneling microscope (STM) and atomic force microscope (AFM).

1. Development of time-resolved and optical spectroscopy combined scanning probe microscopies

Non-equilibrium states of molecules or solids play crucial roles across a broad range of fields such as photovoltaics, chemical reactions, phase transition, etc. The detection and control of non-equilibrium states are extremely crucial for understanding and tuning many basic processes involving electron and energy transfer, but they remain a great challenge to date. Optical methods with the ultrafast laser have proven to be very powerful in detecting various non-equilibrium states, but they suffer from a poor spatial resolution which is about half the wavelength due to the optical diffraction limit. Scanning probe microscopies (SPM) such as the STM and AFM have the advantage of ultrahigh spatial resolution down to the atomic level. However, they are usually only accessible to the equilibrium ground states due to their poor temporal resolution (~us).

To break this constraint, we will develop cutting-edge SPM-based techniques with simultaneously high spatial resolution and high temporal resolution. Examples include the electric pump-probe STM/AFM and optical/Terahertz pump-probe STM/AFM. Besides, we are interested in combining the STM/AFM with various optical spectroscopy techniques such as electron/photon induced luminescence and tip-enhanced Raman spectroscopy, etc. These techniques will provide unprecedented information about the molecules and solids.

Time-resolved SPM techniques: left, electric pump-probe STM/AFM technique (See more from Science 373, 452 (2021)); right, optical/THz pump-probe STM technique (See more from Nature Photonics 7,620 (2013))

2. Ultrahigh-resolution imaging and spectroscopy of single molecules, 2D and strongly correlated materials

Nanometer or atomic scale disorders like vacancies, dopants, domain boundaries, edges, moiré patterns exist widely in materials. These disorders may heavily affect the electronic, optical, magnetic, and thermal properties of materials. Therefore, it is of great importance to reveal their role in these processes which, however, requires nanometer and even atomic spatial resolution. With the state of art STM and qPlus AFM techniques, we will focus on investigating, with atomic or even single-bond resolution, how various disorders affect the electronic as well as the optical properties of single molecules, 2D and strongly correlated materials such as 2D transition metal sulfides (TMDs), magic-angle graphene, high-temperature superconductivity, topological insulators, etc.

With a H-sensitive AFM imaging technique, we realized the imaging of single ion hydrates with ultrahigh spatial resolution. See more from Nature 557, 701 (2018). 中文报道/介绍:江颖、王恩哥等在Nature发文揭示水合离子的微观结构和幻数效应
STM and qPlus-AFM images show the hexagonal structure and the zigzag and armchair edges of a 2D ice on Au(111) with unprecedented resolution. See more from Nature 577, 60 (2020). 中文报道/介绍:《Nature》证实二维冰的存在,突破百年传统认知!

3. Probing the dynamics of various non-equilibrium states at the atomic scale

With the cutting-edge techniques mentioned above, we will study the dynamics of various non-equilibrium states with nanosecond or femtosecond temporal resolution and atomic spatial resolution directly in real space. Examples include the excited states of single molecules, spin dynamics of single atoms and molecules, carrier dynamics in 2D semiconductors, charge/spin/phonon/polaron phase transitions in materials such as superconductors, topological insulators, etc.

With an electric pump-probe AFM technique, we are able to probe the lifetimes of molecular triplet states with atomic resolution. See more from Science 373, 452 (2021). 中文报道/介绍:Science重大突破:原子尺度上观测单分子三重态的寿命和猝灭
Nonequilibrium dynamics of photoexcited polarons on TiO2 was detected with atomic precision with an optical pump-probe STM technique. See more from Phys. Rev. Lett. 124, 206801(2020).
中文报道/介绍:北大八年磨一剑:飞秒扫描隧道显微镜,捕获极化子动力学