| Literature DB >> 26754111 |
Hui Song1, Xiaoyong Yuan1, Xin Tang2.
Abstract
BACKGROUND: In this study, the effects of intraocular lenses (IOLs) with different diopters (D) on chromatic aberration were investigated in human eye models, and the influences of the central thickness of IOLs on chromatic aberration were compared.Entities:
Mesh:
Year: 2016 PMID: 26754111 PMCID: PMC4707777 DOI: 10.1186/s12886-016-0184-6
Source DB: PubMed Journal: BMC Ophthalmol ISSN: 1471-2415 Impact factor: 2.209
Construction parameters of the Liou-Brennan eye model
| Surface | Radius of curvature (mm) | Asphericity | Thickness (mm) | Refractive index (555 nm) |
|---|---|---|---|---|
| 1 | 7.77 | −0.18 | 0.50 | 1.376 |
| 2 | 6.40 | −0.60 | 3.16 | 1.336 |
| 3(pupil) | 12.40 | −0.94 | 1.59 | Grad Aa |
| 4 | Infinity | — | 2.43 | Grad Pa |
| 5 | −8.10 | +0.96 | 16.27 | 1.336 |
a:Grad A and P represent different formulas for calculating gradient refractive index formula
Fig. 1Liou-Brennan eye models
Optical parameters and axial lengths of IOLs with different diopters
| Diopters (D) | Refractive index | Curvature radius of the anterior surface (mm) | Central thickness (mm) | Curvature radius of the posterior surface (mm) | Axial length (mm) |
|---|---|---|---|---|---|
| +30.00 | 1.470 | 6.1951 | 1.224 | −15.7226 | 22.6597 |
| +20.00 | 1.470 | 11.6078 | 0.977 | −15.7226 | 24.9205 |
| +10.00 | 1.470 | 26.7716 | 0.760 | −26.7716 | 27.7042 |
| 0.00 | 1.470 | 38.1000 | 0.533 | 38.0492 | 31.3168 |
| −10.00 | 1.470 | 50.8000 | 0.397 | 10.5918 | 36.4486 |
IOL intraocular lens
Fig. 23D stimulated light pathways of Liou-Brennan eye models
Fig. 3Modulation transfer function (MTF) curves of the IOLs from −10 diopters (D) to 30 D and Liou-Brennan eye models under monochromatic and polychromatic light. a. -10 D IOL eye model, b. 0 D IOL eye model, c. 10 D IOL eye model, d. 20 D IOL eye model, e. 30 D IOL eye model, f. Liou-Brennan eye model
A-value of the IOL eye models with different diopters at 3 mm of the pupil diameter
| SF | 30D | 20D | 10D | 0D | −10D |
|---|---|---|---|---|---|
| (c/d) | |||||
| 3 | 1.241 | 1.285 | 1.353 | 1.449 | 1.595 |
| 6 | 4.495 | 4.595 | 4.752 | 4.991 | 5.344 |
| 9 | 8.951 | 9.077 | 9.270 | 9.556 | 9.923 |
| 12 | 13.909 | 14.019 | 14.128 | 14.271 | 14.341 |
| 15 | 19.031 | 18.892 | 18.768 | 18.548 | 17.954 |
| 24 | 31.353 | 30.192 | 28.620 | 26.333 | 22.675 |
| 33 | 37.830 | 35.336 | 32.098 | 27.644 | 21.559 |
| 42 | 40.159 | 36.569 | 31.629 | 25.449 | 21.245 |
| 51 | 40.562 | 35.455 | 28.944 | 24.503 | 11.747 |
| 60 | 39.331 | 32.501 | 27.721 | 23.957 | —— |
IOL intraocular lens, SF spatial frequencies, MTF modulation transfer function, D diopter, A value = ΔMTF/MTF1; ΔMTF = MTF1-MTF2; MTF1 represents the MTF values measured under 555 nm of monochromatic light, MTF2 represents the MTF values measured under 470–650 nm of polychromatic light
Fig. 4Modulation transfer function (MTF) curves of the IOL from −10 diopters (D) to 30 D and Liou-Brennan eye models under monochromatic and polychromatic light. a. 555 nm monochromatic light, b. 470–650 nm polychromatic light