Visible vertical cavity surface emitting laser


Autoria(s): Cheng P; Ma XY; Gao JH; Kang XJ; Cao Q; Wang HJ; Luo LP; Zhang CH; Lu XL; Lin SM
Data(s)

1998

Resumo

We have designed and fabricated the visible vertical-cavity surface-emitting lasers (VCSEL's) by using metalorganic vapor phase epitaxy (MOVPE). We use the 8 lambda optical cavities with 3 quantum wells in AlGaInP/AlGaAs red VCSEL's to reduce the drift leakage current and enhance the model gain in AlGaInP active region. The structure has a p-type stack with 36 DBR pairs on the top and an n-type with 55-1/2 pairs on the bottom. Using micro-area reflectance spectrum, we try to get a better concordance between the center wavelength of DBR and the emitting wavelength of the active region. We used a component graded layer of 0.05 lambda thick (x = 0.5 similar to 0.9) at the p-type DBR AlGaAs/AlAs interface to reduce the resistance of p-type DBR. We use selective oxidation to define the current injection path. Because the oxidation rate of a thick layer is faster than a thinner one, we grown a thick AlAs layer close to the active region. In this way, we got a smaller active region for efficient confinement of injected carriers (the aperture area is 3 x 3 mu m) to reduce the threshold and, at the same time, a bigger conductive area in the DBR layers to reduce the resistance. We employ Zn doping on the p-side of the junction to improve hole injection and control the Zn dopant diffusion to get proper p-i-n junction. At room temperature, pulse operation of the laser has been achieved with the low threshold current of 0.8mA; the wavelength is about 670nm.

We have designed and fabricated the visible vertical-cavity surface-emitting lasers (VCSEL's) by using metalorganic vapor phase epitaxy (MOVPE). We use the 8 lambda optical cavities with 3 quantum wells in AlGaInP/AlGaAs red VCSEL's to reduce the drift leakage current and enhance the model gain in AlGaInP active region. The structure has a p-type stack with 36 DBR pairs on the top and an n-type with 55-1/2 pairs on the bottom. Using micro-area reflectance spectrum, we try to get a better concordance between the center wavelength of DBR and the emitting wavelength of the active region. We used a component graded layer of 0.05 lambda thick (x = 0.5 similar to 0.9) at the p-type DBR AlGaAs/AlAs interface to reduce the resistance of p-type DBR. We use selective oxidation to define the current injection path. Because the oxidation rate of a thick layer is faster than a thinner one, we grown a thick AlAs layer close to the active region. In this way, we got a smaller active region for efficient confinement of injected carriers (the aperture area is 3 x 3 mu m) to reduce the threshold and, at the same time, a bigger conductive area in the DBR layers to reduce the resistance. We employ Zn doping on the p-side of the junction to improve hole injection and control the Zn dopant diffusion to get proper p-i-n junction. At room temperature, pulse operation of the laser has been achieved with the low threshold current of 0.8mA; the wavelength is about 670nm.

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SPIE.; COS.; COEMA.

Acad Sinica, Inst Semicond, State Key Lab Integrated Optoelect, Beijing 100083, Peoples R China

SPIE.; COS.; COEMA.

Identificador

http://ir.semi.ac.cn/handle/172111/13887

http://www.irgrid.ac.cn/handle/1471x/105125

Idioma(s)

英语

Publicador

SPIE-INT SOC OPTICAL ENGINEERING

1000 20TH ST, PO BOX 10, BELLINGHAM, WA 98227-0010 USA

Fonte

Cheng P; Ma XY; Gao JH; Kang XJ; Cao Q; Wang HJ; Luo LP; Zhang CH; Lu XL; Lin SM .Visible vertical cavity surface emitting laser .见:SPIE-INT SOC OPTICAL ENGINEERING .SEMICONDUCTOR LASERS III, 3547,1000 20TH ST, PO BOX 10, BELLINGHAM, WA 98227-0010 USA ,1998,121-126

Palavras-Chave #半导体物理 #semiconductor lasers #oxidation
Tipo

会议论文