Advance­ment in Quan­tum Tech­no­lo­gy

Tech­ni­sche Uni­ver­si­tät Mün­chen (TUM) deve­lo­ps Sin­gle-Pho­ton Sources for Quan­tum Com­mu­ni­ca­ti­on:

Abso­lu­te eaves­drop­ping pro­tec­tion while trans­mit­ting lar­ge data volu­mes: Quan­tum Com­mu­ni­ca­ti­on pro­mi­ses many advan­ta­ges over today’s stan­dard tech­no­lo­gies. Howe­ver, it requi­res sin­gle pho­tons – and gene­ra­ting them is very dif­fi­cult. Rese­ar­chers at the Tech­ni­sche Uni­ver­si­tät Mün­chen (TUM) and the Munich Cen­ter for Quan­tum Sci­ence and Tech­no­lo­gy (MCQST) have deve­lo­ped a new method that over­co­mes the pro­blems of pre­vious approa­ches. Ins­tead of ampli­fy­ing the desi­red fre­quen­cy, the rese­ar­chers sel­ec­tively sup­press unwan­ted fre­quen­ci­es. Until now, so-cal­led reso­na­tors have most­ly been used to pro­du­ce sin­gle pho­tons – tiny opti­cal struc­tures that influence pho­ton sources in such a way that they emit more light pre­do­mi­nant­ly at a spe­ci­fic fre­quen­cy. Howe­ver, the­se reso­na­tors only func­tion within a nar­row fre­quen­cy ran­ge and must be pre­cis­e­ly tun­ed to the respec­ti­ve pho­ton source.

Rese­ar­chers at TUM and MCQST have the­r­e­fo­re deve­lo­ped a new approach and are taking the oppo­si­te rou­te. Ins­tead of caus­ing the emit­ters to emit more light at a spe­ci­fic fre­quen­cy, they adapt the emitter’s envi­ron­ment so that less light is emit­ted at unwan­ted fre­quen­ci­es. To do this, they use pho­to­nic crys­tal wave­gui­des. The­se are nanos­truc­tures that, through regu­lar­ly arran­ged pat­terns, block pathways through which a pho­ton source can emit light. The team designs the pho­to­nic crys­tal wave­gui­des so that they sup­press only unwan­ted light fre­quen­ci­es while pre­ser­ving the desi­red ones. 


The pho­to­nic crys­tal wave­gui­des are only a few micro­me­ters in size. They sur­round the emit­ter and ther­eby pre­vent the emis­si­on of pho­tons at unwan­ted fre­quen­ci­es, ensu­ring that only pho­tons of the requi­red fre­quen­cy are gene­ra­ted.

Initi­al expe­ri­ments con­firm the technology’s effec­ti­ve­ness: using pho­to­nic crys­tal wave­gui­des, they were able to increase the pro­por­ti­on of desi­red pho­tons in the emit­ted light from about 23% to around 72%. This means the new method achie­ves results that were pre­vious­ly only attainable with signi­fi­cant­ly more com­plex reso­na­tor approa­ches. With the new approach, pho­ton gene­ra­ti­on also occurs slight­ly more slow­ly than befo­re. This, too, is important for Quan­tum Com­mu­ni­ca­ti­on: “If pho­tons are gene­ra­ted too quick­ly, it’s dif­fi­cult for us to con­trol their pro­per­ties,” explains Andre­as Rei­se­rer, pro­fes­sor of Quan­tum Net­works at TUM. “Our approach is the­r­e­fo­re signi­fi­cant­ly bet­ter sui­ted for many emit­ters than the reso­na­tors used to date.”

The rese­ar­chers con­duc­ted their initi­al expe­ri­ments using erbi­um as the pho­ton source – an ele­ment that is alre­a­dy used in fiber-optic tech­no­lo­gies today. Becau­se the crys­tal wave­gui­des have lar­ger emit­ters and a broa­der band­width, this results in two key advan­ta­ges. First, mul­ti­ple pho­ton sources – known as emit­ters – can be used simul­ta­neous­ly within a sin­gle device. With reso­na­tors, this is only pos­si­ble to a limi­t­ed ext­ent due to their very small size. Second, the desi­red fre­quen­cy can be sel­ec­ted more fle­xi­bly, sin­ce pho­to­nic crys­tal wave­gui­des do not need to be pre­cis­e­ly tun­ed to each emit­ter, unli­ke clas­si­cal reso­na­tors.

Flo­ri­an Bur­ger, doc­to­ral stu­dent and the first aut­hor of the publi­ca­ti­on, offers a look ahead: “Quan­tum Net­works are expec­ted to con­nect many Quan­tum Sys­tems with one ano­ther one day. This requi­res inter­faces that can relia­bly trans­fer infor­ma­ti­on from a Quan­tum Sys­tem to indi­vi­du­al pho­tons and then trans­mit them, for exam­p­le, via opti­cal fibers. Our work lays the foun­da­ti­on for this.”

Sin­gle-pho­ton sources form the basis of Quan­tum Com­mu­ni­ca­ti­on. Ste­phan Rin­ner and Flo­ri­an Bur­ger are deve­lo­ping nanos­truc­tures for this pur­po­se that block unwan­ted fre­quen­ci­es, ther­eby signi­fi­cant­ly impro­ving effi­ci­en­cy. In the expe­ri­men­tal set­up, laser light is gui­ded through opti­cal fibers to a micro­scope, whe­re the tiny struc­tures can be visua­li­zed.

 

Publi­ca­ti­on:
Flo­ri­an Bur­ger, Ste­phan Rin­ner, Andre­as Grit­sch, Kili­an Sand­hol­zer and Andre­as Rei­se­rer; Natu­re Com­mu­ni­ca­ti­ons (2026) https://doi.org/10.1038/s41467-026–75489‑5 

Fur­ther infor­ma­ti­on:
- Fun­ded by Bun­des­mi­nis­te­ri­um für For­schung, Tech­no­lo­gie und Raum­fahrt (BMFTR) and the Free Sta­te of Bava­ria as part of the Excel­lence Stra­tegy of the
  Ger­man fede­ral and sta­te govern­ments. www.exzellenz.tum.de

- This pro­ject was fun­ded through the High­tech Agen­da Bay­ern (HTA).
- The Pro­fes­sor­ship of Quan­tum Net­works is part of the TUM School of Natu­ral Sci­en­ces.

Sci­en­ti­fic cont­act:
Flo­ri­an Bur­ger
Tech­ni­sche Uni­ver­si­tät Mün­chen
Pro­fes­sor­ship of Quan­tum Net­works
f.burger@tum.de

Prof. Dr. Andre­as Rei­se­rer
Tech­ni­sche Uni­ver­si­tät Mün­chen
Pro­fes­sor­ship of Quan­tum Net­works
Tel: 004989–28953650
andreas.reiserer@tum.de
https://www.ph.nat.tum.de/quantum-networks/homepage/

Cont­act at the TUM Cor­po­ra­te Com­mu­ni­ca­ti­ons Cen­ter:
Lin­da Schin­nen­burg
presse@tum.de 

 

Aut­hor: © Tech­ni­sche Uni­ver­si­tät Mün­chen (TUM)