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Ultrafast trapping times in ion implanted InP

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Authors

Carmody, C.
Boudinov, H.
Tan, H. H.
Jagadish, C.
Lederer, M. J.
Kolev, V.
Luther-Davies, B.
Dao, L. V.
Gal, M.

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American Institute of Physics (AIP)

Abstract

As⁺ and P⁺implantation was performed on semi-insulating (SI) and p-type InP samples for the purpose of creating a material suitable for ultrafast optoelectronic applications. SI InP samples were implanted with a dose of 1×10¹⁶ cm⁻² and p-type InP was implanted with doses between 1×10¹² and 1×10¹⁶ cm⁻². Subsequently, rapid thermal annealing at temperatures between 400 and 700 °C was performed for 30 sec. Hall-effect measurements, double-crystal x-ray diffraction, and time-resolved femtosecond differential reflectivity showed that, for the highest-annealing temperatures, the implanted SI InP samples exhibited high mobility, low resistivity, short response times, and minimal structural damage. Similar measurements on implantedp-type InP showed that the fast response time, high mobility, and good structural recovery could be retained while increasing the resistivity.

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Journal of Applied Physics

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