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Like uprooting tree stumps’ – a simpler method to manufacture biosensors

August 31, 2026
in Bussines
Denise Maddox
By Denise Maddox Scienmag Editorial Profile - Mechanical Engineering
Reading Time: 3 mins read
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Like uprooting tree stumps’ – a simpler method to manufacture biosensors

Like uprooting tree stumps’ – a simpler method to manufacture biosensors

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Original Article Title: ‘Like uprooting tree stumps’ – a simpler method to manufacture biosensors

Journal or Source Feed: Eurekalert | Business

Original Publication Date: Not provided

Canonical Source URL:

Canonical DOI: Not provided

Context Rule: These fields identify the source article. DOIs inside the bibliography identify cited works and must not replace the canonical DOI above.

News Release
27-Aug-2026

‘Like uprooting tree stumps’ – a simpler method to manufacture biosensors

Peer-Reviewed Publication
KTH, Royal Institute of Technology








Xinxin Liu in the lab
image: Xinxin Liu prepares a newly-fabricated nanopore membrane for evaluation. The new method simplifies production of large arrays of nanopores for sensing and analysis technologies used in medical research and, increasingly, in specialized clinics. Photo: David Callahan

 

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Credit: David Callahan

A new manufacturing method could help move the production of nanoscale sensors from specialized fabrication facilities to conventional semiconductor manufacturing plants.

Publishing in Science Advances, researchers from KTH Royal Institute of Technology liken their technique to uprooting a tree stump with rope.

The work aims at solving a bottleneck in fabricating nano-scale holes in thin membranes, a key component in a range of sensing and analysis technologies used in medical research and, increasingly, in specialized clinics where sequencing systems are used for outbreak surveillance, cancer genomics or infectious disease identification, among other things. Nanopores are valuable tools in these settings because their extremely small openings in ultra-thin materials can be used to detect and analyze individual molecules such as DNA and proteins.

Frank Niklaus, professor of micro and nanosystems at KTH Royal Institute of Technology, says the study demonstrates the unique approach of using built-in mechanical stress to create nanoholes.

A typical sensor device membrane has a single nanopore, which acts as a single molecule detector. These openings are produced one-at-a-time, using slow, expensive or difficult-to-scale nanofabrication techniques, such as electron-beam drilling and Transmission Electron Microscope (TEM) sculpting, says Xinxin Liu, a doctoral student at KTH Royal Institute of Technology and first author of the study.

But the study demonstrated that this technique can produce large arrays of nanopores in parallel by harnessing fracture mechanics generating openings as small as about 6 to 10 nanometers.

The process begins with a stack of layers placed on a silicon wafer. The top layer is deliberately stretched under tension. Underneath is a second layer of material that will be etched away until a small pre-defined shape remains, which is meant to define the shape of the nanopore in the third layer of material underneath. This third layer is the sensor membrane in which the nanopore will be formed.

“The beam pulls on until it tears a nanoscale fragment from the membrane, creating the hole,” Liu says. “Much like a removing a tree stump with a rope – the beam attaches to the nanoscale anchor, pulling it away from the membrane, which serves as the ground.”

The technique was tested successfully in multiple materials, including dielectric, metallic and semiconductor sensor membranes. The study shows these nanopores were effective at DNA analysis and molecule detection. 

Liu says the researchers have patented the technique and formed a startup to progress it toward commercial implementation. “We have already shipped samples to a collaborator for testing, so it has moved beyond the lab stage.”



Journal

Nature Communications

DOI

10.1038/s41467-026-75538-z

Article Title

Lithographic patterning of conformal thin films on 3D structures using Scaffold-architected Lift-off masks

Article Publication Date

14-Aug-2026

Disclaimer: AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert system.







Subject of Research: Bussines

Subject of Research: Bussines

Article Title: Like uprooting tree stumps’ – a simpler method to manufacture biosensors

Article References: Original research article

Image Credits: AI Generated

DOI: Not provided

Keywords: bioelectronic device innovation, bioengineering in sensor technology, biosensor application in environmental monitoring, biosensor development techniques, biosensor manufacturing methods, biosensor prototyping and testing, eco-friendly biosensor production, innovative biosensor design, low-cost biosensor creation, novel biosensor engineering approaches, simplified biosensor fabrication, sustainable biosensor technologies

Cite Scienmag News

Denise Maddox. (August 31, 2026). Like uprooting tree stumps’ – a simpler method to manufacture biosensors. Scienmag. https://scienmag.com/like-uprooting-tree-stumps-a-simpler-method-to-manufacture-biosensors/

Denise Maddox. "Like uprooting tree stumps’ – a simpler method to manufacture biosensors." Scienmag, 31 August 2026, https://scienmag.com/like-uprooting-tree-stumps-a-simpler-method-to-manufacture-biosensors/. Accessed 31 August 2026.

Denise Maddox. "Like uprooting tree stumps’ – a simpler method to manufacture biosensors." Scienmag. August 31, 2026. https://scienmag.com/like-uprooting-tree-stumps-a-simpler-method-to-manufacture-biosensors/

Tags: advanced biosensing technologiesbioelectronic device innovationbioengineering in sensor technologybiological detection technologybiosensor application in environmental monitoringbiosensor application in healthcarebiosensor development techniquesbiosensor manufacturing methodsbiosensor prototyping and testingeco-friendly biosensor designeco-friendly biosensor productionenvironmental monitoring sensorsinnovative biosensor designinnovative biosensor developmentlow-cost biosensor creationnovel biosensor engineering approachesnovel biosensor substratessensor engineering techniquessimplified biosensor fabricationsustainable biosensor technologiessustainable sensor production
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