activity
20242026
collaborators

8 papers

physics.optics2026

Nonresonant optomechanical control of structural phases

Jiaojian Shi, Yijing Huang, Christian Heide +24

Optical tweezers demonstrate how light can exert forces to trap, repel, and manipulate microscopic particles without absorption. Recent theory has suggested that such forces can ex…

cs.SI2026

Fostering cultural change in research through innovative knowledge sharing, evaluation, and community engagement strategies

Junsuk Rho, Jinn-Kong Sheu, Andrew Forbes +30

Bringing together researchers, funders, industry partners, and publishers from 14 countries across 5 continents, we advance the debate around open-science, assessment and learning.…

physics.optics2025

Temperature-dependent excitonic light manipulation with atomically-thin optical elements

Ludovica Guarneri, Qitong Li, Thomas Bauer +5

Monolayer 2D semiconductors, such as WS2, exhibit uniquely strong light-matter interactions due to exciton resonances that enable atomically-thin optical elements. Similar to geome…

physics.optics2025

Acoustic wave modulation of gap plasmon cavities

Skyler P. Selvin, Majid Esfandyarpour, Anqi Ji +5

The role of metallic nanostructures in nanophotonics is expected to expand if ways to electrically manipulate their optical resonances at high speed can be identified. Here, we cap…

physics.optics2025

Apparent Resonance Splitting in Self-Coupled Excitonic Systems

Avishek Sarbajna, Qitong Li, Dorte Rubæk Danielsen +6

Thin films of high-refractive-index excitonic materials enable self-coupling by simultaneously supporting intrinsic excitonic transitions and optical resonances. These optical reso…

cond-mat.mes-hall2025

Roadmap on Nonlocality in Photonic Materials and Metamaterials

Francesco Monticone, N. Asger Mortensen, Antonio I. Fernández-Domínguez +63

Photonic technologies continue to drive the quest for new optical materials with unprecedented responses. A major frontier in this field is the exploration of nonlocal (spatially d…