Other meanings of Scanning tunneling microscope
Physics & Instrumentation
The scanning tunneling microscope (STM) is an instrument that images surfaces at the atomic scale, developed in 1981 by Gerd Binnig and Heinrich Rohrer at IBM Zurich, for which they received the Nobel Prize in Physics in 1986. It works by scanning an atomically sharp tip very close to a conductive surface and measuring the quantum tunneling current that flows between them, allowing real-space imaging of individual atoms and even manipulation of matter at the nanoscale.
The STM relies on the quantum mechanical phenomenon of tunneling. When a sharp metal tip is brought within a few angstroms of a conductive sample, and a bias voltage is applied, electrons tunnel through the vacuum gap, producing a current that is exponentially sensitive to the tip-sample distance.1 This exponential sensitivity gives the STM its atomic resolution.
Two main imaging modes are used: constant-current mode, where the tip height is adjusted to keep the current constant, and constant-height mode, where the tip is scanned at a fixed height and the current variations are recorded. Constant-current mode is more common for rough surfaces, while constant-height mode allows faster scanning.
An STM consists of a piezoelectric scanner that moves the tip with sub-angstrom precision, a vibration isolation system, and a feedback loop to control the tip-sample distance.2 The tip is typically made of tungsten or platinum-iridium, sharpened to a single atom at its apex.
Vibration isolation is critical; early STMs used magnetic levitation or stacked metal plates with springs to dampen vibrations. Modern instruments often use eddy current damping and acoustic enclosures.
STMs are used in surface science to study atomic structure, adsorption, and surface reactions. They have been instrumental in imaging silicon surfaces, metal surfaces, and even molecules such as carbon nanotubes and DNA.3
Beyond imaging, STMs can manipulate individual atoms and molecules, enabling the construction of quantum corrals and the study of single-molecule electronics. They also serve as a tool for nanolithography and for measuring local electronic properties via scanning tunneling spectroscopy (STS).
While the STM is famous for imaging, it has several lesser-known facets:
Gerd Binnig and Heinrich Rohrer developed the STM at IBM Zurich, building on earlier work on tunneling in solid-state physics. They shared the 1986 Nobel Prize in Physics with Ernst Ruska, who invented the electron microscope.4
Other key contributors include Don Eigler, who first manipulated individual atoms with an STM in 1990, spelling out "IBM" with xenon atoms, and later researchers who developed low-temperature STMs for studying quantum phenomena.
The STM is a foundational tool in nanoscience, enabling atomic-scale imaging and manipulation.
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