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Phys. Rev. A 58, 2542–2559 (1998)

Spatial solitons in semiconductor microcavities

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L. Spinelli1, G. Tissoni1, M. Brambilla2, F. Prati3, and L. A. Lugiato1
1INFM, Dipartimento di Fisica dell’Università di Milano, via Celoria 16, 20133 Milano, Italy
2INFM, Dipartimento Interateneo di Fisica del Politecnico di Bari, via E. Orabona 4, 7016 Bari, Italy
3INFM, Università di Milano, II Facoltà di Scienze, via Lucini 3, 22100 Como, Italy

Received 18 March 1998; published in the issue dated September 1998

We consider a semiconductor microcavity driven by a coherent and stationary holding beam, in two distinct configurations. In the first, no carriers are injected in the multiple-quantum-well structure and the optical nonlinearity is governed by an excitonic resonance. The second corresponds to that of a vertical-cavity surface-emitting laser kept slightly below threshold. We describe both configurations using a unified model that includes both field diffraction and carrier diffusion. We calculate numerically both the time evolution and the stationary profile of the solitonic solutions, using a generalization of the radial integration technique introduced by Firth and Scroggie [Phys. Rev. Lett. 76, 1623 (1996)]. We analyze the instability that forms spatial patterns and especially cavity spatial solitons. We predict the existence of these solitons in various parametric domains for both configurations. We demonstrate that these results are independent of the periodic boundary conditions used in the simulations. We show that, introducing a simple phase modulation in the holding beam, one can eliminate the motions of solitons that arise from noise and from amplitude gradients. The solitons are robust with respect to parametric variations, to carrier diffusion, and even to some amount of self-defocusing. This picture points to the possibility of realizing arrays of solitonic pixels using semiconductor microresonators.

© 1998 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevA.58.2542
DOI:
10.1103/PhysRevA.58.2542
PACS:
42.65.Sf, 42.65.Tg, 42.79.Ta