ÄûÃʵ¼º½

News

Tailor-made carbon can help scientists find hereditary diseases and the right doses of medication – a new method of analysis is speeding up the research

Researchers can now obtain more accurate information than ever before on the structure and surface chemistry of carbon.
carbon materials atomic structure image Anja Aarva Aalto university
The new methodology allows the experimental spectrum produced by X-ray spectroscopy to be separated into atomic-level data. Image credit: Anja Aarva / Aalto University

Sensors manufactured with carbon-based materials can provide uniquely accurate and real-time information on hereditary diseases or the concentrations of drugs in the body. In addition to medicine, carbonaceous materials are used in batteries, solar cells and water purification.

Other elements, such as hydrogen and oxygen, are almost always present in carbon-based materials, which alters the materials’ properties. Therefore, modifying materials for desired applications requires atomic-level knowledge on carbon surface structures and their chemistry. Researchers at Aalto University, the University of Cambridge, the University of Oxford and Stanford University have now taken a significant new step forward in describing the atomic nature of carbonaceous materials.

Detailed information on carbon surfaces can be obtained by X-ray spectroscopy, but the spectrum it produces is challenging to interpret because it summarises information from several local chemical environments of the surface. The researchers have developed a new systematic analysis method that uses machine learning to integrate the computational model (density functional theory) with the experimental results of the carbon sample. The new methodology allows the experimental spectrum produced by X-ray spectroscopy to be separated into atomic-level data.

‘In the past, experimental results have been interpreted differently, based on varying literature references, but now we were able to analyse the results using only computational references. The new method gives us a much better understanding of carbon surface chemistry without human-induced bias’ says Anja Aarva, a doctoral student at Aalto University.

The new method expands knowledge of carbon-based materials

In a two-part study, the researchers initially studied how differently bound carbon affects the formation of the experimental spectrum qualitatively. The researchers then attempted to aggregate the measured spectrum with computational spectrum reference data to obtain a quantitative estimate of what the experimental spectrum consists of. This was to help them determine what the nature of the carbon sample at the atomic-level is. The new methodology is suitable for analysing the surface chemistry of various forms of carbon, such as graphene, diamond and amorphous carbon. 

The study is a continuation of the work of Aalto University postdoctoral researcher Miguel Caro and professor Volker Deringer from Oxford University, which extensively mapped the structure and reactivity of amorphous carbon. The study utilises machine learning methods developed by professor Volker Deringer and professor Gabor Csányi from Cambridge University. Experimental measurements were carried out by Sami Sainio, an Aalto based postdoctoral researcher at Stanford University.

‘Next, we intend to use the methodology we have developed to predict, for example, what kind of carbon surface would be best for electrochemical identification of certain neurotransmitters, and then try to produce the desired surface. In this way, computational work would guide experimental work and not vice versa, as has typically been the case in the past,’ Tomi Laurila, professor at Aalto University said.

The study was published as a two-part article in the prestigious Chemistry of Materials publication.

Links to the articles:

More information

Anja Aarva
Doctoral student
Aalto University
anja.aarva@aalto.fi

Tomi Laurila
Professor
Aalto University
tomi.laurila@aalto.fi
 

Lue lisää aiheesta

Hiilen muodostamia paikallisia atomirakenteita on lukuisa määrä, mutta ne voidaan jaotella vain muutamiin ryhmiin, joilla on tyypilliset atomi- ja elektroniset ominaisuudet.

Tailoring the surface of carbon may hold the key to monitoring patient blood in real-time

Machine learning is increasing the pace of development of customised carbon surfaces with a wide variety of applications

News
Trajectories followed by incident and knockon atoms during energetic deposition of a tetrahedral amorphous carbon thin film.

Diamond-like carbon is formed differently to what was believed – machine learning enables development of new model

Customised carbon surfaces can be used in areas such as medical science and water purification.

News
Lääkeainepitoisuuksia mittaava anturi / Kuva: Niklas Wester

A new measurement method for strong analgesics can reduce poisoning and overdose deaths

The effects of tramadol vary individually. Now they can be monitored more accurately by quick measuring of drug concentrations.

News
  • Updated:
  • Published:
Share
URL copied!

Read more news

Three people having a discussion at a table with laptops. Text: Visiting Professorships at TU Graz, October 1, 2026 - January 31, 2027.
Cooperation, Research & Art, Studies, University Published:

Apply Now: Unite! Visiting Professorships at TU Graz

TU Graz, Austria, invites experienced postdoctoral researchers to apply for two fully funded visiting professorships. The deadline for expressions of interest is 20 February 2026, and the positions will begin on 1 October 2026.

A modern lobby with a large brown sectional sofa, colourful artwork, and a staircase. A '50' logo is on the back wall.
Press releases Published:

Hanaholmen’s 50th anniversary exhibition lives on online – making the history of Finnish–Swedish cooperation accessible worldwide

MeMo Institute at Aalto University has produced a virtual 3D version of the anniversary exhibition of Hanaholmen.
Research & Art Published:

Soil Laboratory Exhibition – Exploring the Dialogue Between Human and the Earth in Utsjoki

Soil Laboratory explores the relationship between humans and the earth as a living landscape through ceramic practices in Utsjoki.
Three people walking in winter next to a sign that says 'Aalto University' with snow-covered trees and buildings in the background.
Research & Art Published:

The Finnish Cultural Foundation awarded grants for science and art

A total of 15 individuals or groups from Aalto University received grants