Page 21 - Winter 2026
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Industry News                                                                                Industry News




















 UNIVERSITY OF   BREAKTHROUGH

 OULU USES LIGHT   IN CREATION OF

 TO TRANSMIT DATA  BLUE ENERGY














 A team at the University of Oulu, Finland, is working   Blue energy is a renewable power source that is   Testing involved fabricating 1,000 coated nanopores
 on a project called the SUPERIOT Project that uses   naturally generated when salt and fresh water   arranged hexagonally on a silicon nitride membrane.
 visible light communication rather than radio   combine. Now, researchers in Switzerland have   Conditions of sea water mixing with river water were
 waves to transmit data.  devised a method that significantly improves    simulated enabling a power density of around 15
          the performance of osmotic energy systems             Watts per square metre to be achieved. This is two to
 Light-based data transfer could, for example, replace
          by allowing ions to flow more freely through          three times greater than with conventional polymer
 wireless Wi-Fi networks with light fidelity (Li-Fi) using
          nanoscale channels.                                   membrane technology.
 a transmitter in the form of a standard LED lamp
 that functions as a Wi-Fi router sending information   Osmotic energy systems rely on ion-selective   Professor Aleksandra Radenovic, who led the
 to a receiving device. The LED lamp is modulated to   membranes to generate voltage as salt water ions   study, states:
 flicker and the receiver interprets the flicker. When   drift towards fresh water. Unfortunately, up to now,
                                                                   “ Our work brings together the strengths of two
 the light is on, the receiver reads a one; when it is off   there has always been a trade-off between allowing
                                                                   main approaches to osmotic energy harvesting:
 it reads a zero. A computer or smartphone decodes   ions to pas quickly and their selectivity. Maintaining
                                                                   polymer membranes, which inspire our high-
 the light signals. Data transmission can also be   charge separation and mechanical strength are also
                                                                   porosity architecture; and nanofluidic devices,
 achieved in the reverse direction using infrared light   issues for large scale deployment.
                                                                   which we use to define highly charged nanopores.
 to complete tasks such as sending an email, visible
          At the EFPL Laboratory for Nanoscale Biology             By combining a scalable membrane layout
 white light being distracting if emitted from a phone
          (LBEN) and the Interdisciplinary Centre for Electron     with precisely engineered nanofluidic channels,
 or computer.
          Microscopy (CIME) a way has been demonstrated            we achieve a highly efficient osmotic energy
 The team is developing light-based communication   to create a lubricated surface that allows ions to   conversion and open a route toward nanofluidic-
 particularly for use in environments where radio   progress with far less friction than before by coating   based blue energy systems “.
 signals could potentially interfere with sensitive   nanopores with tiny lipid-based bubbles known as   Researcher Tzu-Heng Chen adds:
 equipment, such as hospitals, aircraft and some   Our vision is to print complete IoT devices. The   liposomes. As a result there is faster movement of
 factories. Potential is also envisaged in smart cities   finished product would be a sticker no larger than   selected ions without compromising on which ions   “ By showing how precise control over nanopore
 where devices collect data from their surroundings   a bank card, designed to carry out its function   can pass.  geometry and surface properties can
 and transmit it autonomously, as well as powering   seamlessly within the Internet of Things.  fundamentally reshape ion transport, our study
          The lubricating effect derives from the lipid bilayers
 themselves using tiny solar cells rather than batteries,   A sensor on a patient could send an instant alert to   that are used to coat the nanopores. These mirror   moves blue energy research beyond performance
 which would save many disposable batteries.  nurses if they fall or if their temperature climbs too   the natural structure of cell membranes, forming   testing and into a true design era “.
 high.                                                          Reference : ‘Lubricated Nanopores offer smoother Route to boosting
 Professor Marcos Katz comments:  when two layers of fat molecules align with their
                                                                Blue Energy’, New Electronics, Vol. 59 Issue 3, March 2026, p.33
 They could use both radio and light for data   hydrophobic tails facing inwards and their hydrophilic
 “ Our goal is that in the future devices could switch
 transmission, remaining safe even in environments   tails facing outward. Once attached to the nanopores,
 flexibly between light and radio depending on
 sensitive to radio waves. At the same time, they   their water-attracting surfaces pull in an ultrathin
 the environment. If a finger happens to block
 the smartphone’s light sensor, the connection   would harvest their energy from the surrounding   layer of water a few molecules thick which clings to
 light “.  the pore walls and prevents direct contact between
 weakens or cuts out entirely, prompting the device
          the pore surface and the moving ions.
 to fall back on radio waves.  The Institution thanks Oulu University for this submission.
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