Applications
Application Notes
Published: 19 Oct 2022 · Last updated: 19 Oct 2022
Tags: EDS
SEM provides significant versatility for life science research. But, there are key aspects of biological SEM that make EDS challenging.
Traditional SEM EDS uses relatively high accelerating voltages (20–30 kV) and high beam currents to produce strong X-ray emissions from samples. Biological SEM uses low accelerating voltages and beam currents to prevent damage to the sample, reduce the chance of charging and to improve image resolution.
The other aspect to consider is that biological samples are mostly comprised of light elements (hydrogen, carbon, nitrogen, oxygen, sodium, magnesium, phosphorous, sulphur, chlorine, potassium and calcium) and some heavier elements that are often found in trace amounts (chromium, manganese, iron, cobalt, copper and zinc). This means that the X-rays emitted from the sample are relatively low energy. Low energy X-rays can be absorbed by the windows that most EDS detectors have, which reduces the amount of X-ray signal that can be detected.
The Ultim Extreme detector is designed without a window and with a modified nose, which has several advantages.

Figure 1: A comparison between the Ultim Extreme detector and the Ultim Max 170 showing maps and spectra taken of a resin embedded Venus' fly trap leaf and gland. Note the improved signal in the Ultim Extreme maps and in particular the yellow signal, which is nitrogen. There is a far more obvious nitrogen peak (blue arrow) in the Ultim Extreme spectrum (yellow) compared to the Ultim Max 170 (red).
Whichever detector you end up choosing, there is no doubt that EDS offers exciting new avenues for biological research. EDS can provide the following:
The ability to combine ultrastructural analysis of samples with sample composition is applicable to all areas of biological electron microscopy, and the Ultim Extreme detector is an ideal system to address this line of research.