Focused ion beam technology: a single tool for a wide range of applications

Focused ion beams can be used to analyse, structure or optimise materials - enabling a wide range of possible applications. The publication from the Fit4Nano project provides an overview and a roadmap for future developments.

Focused ion beams can be used to analyse, structure or optimise materials - enabling a wide range of possible applications. The publication from the Fit4Nano project provides an overview and a roadmap for future developments. © N. Klingner/HZDR, Katja Höflich/HZB

Processing materials on the nanoscale, producing prototypes for microelectronics or analysing biological samples: The range of applications for finely focused ion beams is huge. Experts from the EU collaboration FIT4NANO have now reviewed the many options and developed a roadmap for the future. The article, published in “Applied Physics Review”, is aimed at students, users from industry and science as well as research policy makers.

“We realized that focused ion beams can be used in many different ways, and we thought we had a good overview at the start of the project. But then we discovered that there are many more applications than we thought. In many publications, the use of focused ion beams is not even explicitly mentioned, but is hidden in the methods section. It was detective work,” says Dr Katja Höflich, physicist at the Ferdinand-Braun-Institut and the Helmholtz-Zentrum Berlin (HZB), who coordinated the comprehensive report. “In particular, we found work from the 1960s and 1970s that was ahead of its time and unjustly forgotten. They still provide important insights today”.

The report provides an overview of the current state of focused ion beam (FIB) technology, its applications with many examples, the most important equipment developments and future prospects. “We wanted to provide a reference work that is useful for academic research and industrial R&D departments, but also helps research management to find their way in this field,” says Dr Gregor Hlawacek, group leader at the Institute of Ion Beam Physics and Materials Research at Helmholtz-Zentrum Dresden-Rossendorf (HZDR). Hlawacek leads the FIT4NANO project, an EU project on FIB technologies, in which the authors of the report are involved.

From basic research to the finished component

FIB instruments use a focused ion beam of typically two to 30 keV. With its small diameter in the nanometre and sub-nanometre range, such an ion beam scans the sample and can change its surface with nanometre precision. FIB instruments are a universal tool for analysis, maskless local material modification and rapid prototyping of microelectronic components. The first FIB instruments were used in the semiconductor industry to correct photomasks with focused gallium ions. Today, FIB instruments are available with many different types of ions. An important application is the preparation of samples for high-resolution, nanometre-precision imaging in the electron microscope. FIB methods have also been used in the life sciences, for example to analyse and image micro-organisms and viruses with FIB-based tomography, providing deep insights into microscopic structures and their function.

FIB instruments are constantly evolving towards other energies, heavier ions and new capabilities, such as the spatially resolved generation of single atomic defects in otherwise perfect crystals. Such FIB processing of materials and components has enormous potential in quantum and information technology. The range of applications, from fundamental research to the finished device, from physics, materials science and chemistry to life sciences and even archaeology, is absolutely unique. “We hope that this roadmap will inspire scientific and technological breakthroughs and act as an incubator for future developments,” says Gregor Hlawacek.

arö

  • Copy link

You might also be interested in

  • Synchrotron radiation sources: toolboxes for quantum technologies
    Science Highlight
    01.12.2025
    Synchrotron radiation sources: toolboxes for quantum technologies
    Synchrotron radiation sources generate highly brilliant light pulses, ranging from infrared to hard X-rays, which can be used to gain deep insights into complex materials. An international team has now published an overview on synchrotron methods for the further development of quantum materials and technologies in the journal Advanced Functional Materials: Using concrete examples, they show how these unique tools can help to unlock the potential of quantum technologies such as quantum computing, overcome production barriers and pave the way for future breakthroughs.
  • How carbonates influence CO2-to-fuel conversion
    Science Highlight
    25.11.2025
    How carbonates influence CO2-to-fuel conversion
    Researchers from the Helmholtz Zentrum Berlin (HZB) and the Fritz Haber Institute of the Max Planck Society (FHI) have uncovered how carbonate molecules affect the conversion of CO2 into valuable fuels on gold electrocatalysts. Their findings reveal key molecular mechanisms in CO2 electrocatalysis and hydrogen evolution, pointing to new strategies for improving energy efficiency and reaction selectivity.

  • Peat as a sustainable precursor for fuel cell catalyst materials
    Science Highlight
    25.11.2025
    Peat as a sustainable precursor for fuel cell catalyst materials
    Iron-nitrogen-carbon catalysts have the potential to replace the more expensive platinum catalysts currently used in fuel cells. This is shown by a study conducted by researchers from the Helmholtz-Zentrum Berlin (HZB), Physikalisch-Technische Bundesanstalt (PTB) and universities in Tartu and Tallinn, Estonia. At BESSY II, the team observed the formation of complex microstructures within various samples. They then analysed which structural parameters were particularly important for fostering the preferred electrochemical reactions. The raw material for such catalysts is well decomposed peat.