Cambridge and NIST researchers develop programmable quantum light circuits using ultrathin materials
Researchers from the University of Cambridge and the National Institute of Standards and Technology have demonstrated that ultrathin, two-dimensional materials can create programmable quantum light cโฆ
Researchers have shown that ultrathin, twoโdimensional materials could make quantum light circuits programmable, a claim made in a review paper published this week in *Nature Reviews Physics*. The paper, authored by a team from the University of Cambridge and the National Institute of Standards and Technology, argues that atomโthin layers such as graphene, molybdenum disulfide and hexagonal boron nitride can be engineered to guide, switch and entangle single photons on a chip. The authors say the approach could be demonstrated in laboratory prototypes within the next two years.
Quantum photonics is seen as a key pillar for future quantum computers, secure communications and ultraโprecise sensors, but it has long been hampered by the lack of scalable, lowโloss components. Conventional silicon waveguides are bulky and difficult to reconfigure once fabricated, forcing designers to commit to a fixed circuit layout. That rigidity limits the ability to run different quantum algorithms on the same hardware. The new review points out that the extraordinary optical properties of 2D materialsโhigh refractive index contrast, strong nonlinear response and tunable conductivityโaddress these shortcomings. By stacking or patterning these layers, engineers can create onโdemand phase shifters, modulators and beam splitters that operate at the singleโphoton level.
The paper cites more than 30 recent experiments that demonstrate loss rates as low as 0.08โฏdBโฏcmโปยน in grapheneโbased waveguides and nearโunity modulation depth in molybdenum disulfide electroโoptic devices. โThese figures are comparable to the best silicon platforms, but with the added advantage of electrical tunability,โ said Prof. Elena Garcรญa, a quantum optics expert at the University of Barcelona who was not involved in the study. She added that the ability to rewrite circuit pathways with a voltage pulse could dramatically speed up the development cycle for quantum processors. Industry analysts note that the approach aligns with the U.S. National Quantum Initiativeโs push for modular, interoperable quantum hardware.
The next step is to integrate the ultrathin components with existing silicon photonic foundries and test them in fullโscale quantum networking experiments. Funding agencies in Europe and Asia have already earmarked grants for โprogrammable quantum photonic chipsโ based on 2D materials. If the promised performance gains materialise, developers could roll out reconfigurable quantum processors that run multiple algorithms without fabricating new chips for each task, accelerating the path from laboratory prototypes to commercial quantum devices.
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