| Literature DB >> 27885621 |
Feng Zhang1,2, Masao Ikeda3,4, Shu-Ming Zhang1,2, Jian-Ping Liu1,2, Ai-Qin Tian1,2, Peng-Yan Wen1,2, Yang Cheng1,2, Hui Yang1,2.
Abstract
The polarization fields in c-plane InGaN/(In)GaN multiple quantum well (MQW) structures grown on sapphire substrate by metal-organic chemical vapor deposition are investigated in this paper. The indium composition in the quantum wells varies from 14.8 to 26.5% for different samples. The photoluminescence wavelengths are calculated theoretically by fully considering the related effects and compared with the measured wavelengths. It is found that when the indium content is lower than 17.3%, the measured wavelengths agree well with the theoretical values. However, when the indium content is higher than 17.3%, the measured ones are much shorter than the calculation results. This discrepancy is attributed to the reduced polarization field in the MQWs. For the MQWs with lower indium content, 100% theoretical polarization can be maintained, while, when the indium content is higher, the polarization field decreases significantly. The polarization field can be weakened down to 23% of the theoretical value when the indium content is 26.5%. Strain relaxation is excluded as the origin of the polarization reduction because there is no sign of lattice relaxation in the structures, judging by the X-ray diffraction reciprocal space mapping. The possible causes of the polarization reduction are discussed.Entities:
Keywords: InGaN/(In)GaN multiple quantum wells; Photoluminescence; Polarization field; Reciprocal space mapping; Strain relaxation
Year: 2016 PMID: 27885621 PMCID: PMC5122532 DOI: 10.1186/s11671-016-1732-y
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Sample structures determined by growth parameters and HR-XRD
| Sample |
|
|
|
|
|
|---|---|---|---|---|---|
| A | 14.8 | 2.90 | 0.0 | 12.36 | 2.81 |
| B | 17.3 | 2.48 | 0.0 | 9.90 | 3.47 |
| C | 19.5 | 2.10 | 3.8 | 10.65 | 6.37 |
| D | 23.2 | 2.30 | 1.2 | 10.06 | 5.29 |
| E | 26.5 | 2.62 | 0.0 | 9.94 | 7.32 |
Fig. 1a The omega/2theta scan of MQW sample. b The dependence of QW and QB thickness on composition determined by XRD and growth rate
Theoretical polarization field strengths, quantum levels, and theoretical wavelengths assuming 100% polarization field
| Sample | Fw 100% (MV/cm) | FB 100% (MV/cm) | λtheoretical (nm) | λmeasured (nm) |
|---|---|---|---|---|
| A | −2.01 | 0.471 | 450.4 | 451.0 |
| B | −2.35 | 0.588 | 455.4 | 456.0 |
| C | −2.30 | 0.454 | 453.8 | 438.1 |
| D | −3.13 | 0.716 | 510.0 | 461.7 |
| E | −3.42 | 0.901 | 570.9 | 469.5 |
Fig. 2The comparison between the measured and theoretical wavelengths
Fig. 3a The comparison between measured and theoretical wavelengths considering reduced polarization field. b The polarization ralative to the theoretical values
Fig. 4The reported and our data of polarization field
Fig. 5RSM around the asymmetric (1015) Bragg reflection for sample A (a), C (b), D (c), and E (d)
Fig. 6PL intensity and polarization ratio for some samples