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Anisotropic resonance energy transfer with strained phosphorene

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abstract

We analyze the resonance energy transfer (RET) rate between quantum emitters (QEs) near a phosphorene/SiC interface under the effects of uniaxial strain. Using a low-energy tight-binding model, we describe the electronic structure of strained phosphorene in an experimentally feasible situation. Due to the anisotropic electronic structure of phosphorene, we demonstrate that the RET rate drastically depends on the direction in which the QEs are separated relative to the phosphorene lattice. More specifically, we obtain a large variation in the RET rate when the QEs are separated along the zigzag direction, in contrast to a rather small variation when separated along the armchair direction of phosphorene's crystalline structure. Furthermore, our results reveal that the RET rate can be highly modulated by uniaxial strain in phosphorene when considering emitters placed along the zigzag direction. Finally, by means of a simple toy model, we also show that this anisotropy in the RET rate is a general characteristic produced by anisotropic 2D materials.

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Spontaneous emission and Purcell effect: some aspects

cond-mat.mes-hall · 2025-06-11 · unverdicted · novelty 1.0

A pedagogical review of spontaneous emission and the Purcell effect, with standard worked examples and summaries of recent studies on engineered environments.

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  • Spontaneous emission and Purcell effect: some aspects cond-mat.mes-hall · 2025-06-11 · unverdicted · none · ref 176 · internal anchor

    A pedagogical review of spontaneous emission and the Purcell effect, with standard worked examples and summaries of recent studies on engineered environments.