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At least 19 recordsLinked to original sources

Partial coherence interferometry: a novel approach to biometry in cataract surgery.

PURPOSE: To compare biometry performed by an enhanced version of dual beam partial coherence interferometry and applanation ultrasound in a prospective study of 85 cataract eyes to improve refractive outcome of cataract surgery due to a more accurate calculation of intraocular lens power. METHODS: The SRK II formula using ultrasound biometry data was employed. Three months after surgery, partial coherence interferometry biometry was repeated and refractive outcome was determined. Preoperative partial coherence interferometry biometry data were used to determine the refractive power of the intraocular lenses retrospectively and to calculate the possible refractive outcome. RESULTS: Precision of partial coherence interferometry biometry was more than 10 times better than that of ultrasound. Therefore, the possible mean absolute error for postoperative refraction achieved with partial coherence interferometry biometry was 0.49 diopters (compared with 0.67 diopters with ultrasound biometry), resulting in an improvement of 27%. Axial eye length measured with the two techniques differed by a mean of 460 microm. The difference in lens thickness measured with partial coherence interferometry and ultrasound significantly correlated with cataract grade. A mean shortening of 120 microm of axial eye length following cataract surgery was also detected by partial coherence interferometry. CONCLUSIONS: The enhanced version of partial coherence interferometry offers biometry with unprecedented precision (<10 microm) and resolution (approximately 12 microm), therefore improving the refractive outcome in cataract surgery. This noninvasive technique provides a high degree of comfort for the patient, with no need for local anesthesia or pupil dilation and minimized risk of corneal infection.

Adult↗

Measurement of the axial length of cataract eyes by laser Doppler interferometry.

PURPOSE: To examine the applicability of the recently developed laser Doppler interferometry technique for measuring the axial length of cataract eyes in a realistic clinical situation. To determine the performance of the instrument as a function of cataract grade. To compare the results to those of ultrasound methods. METHODS: A total of 196 cataract eyes of 100 patients were examined. The axial eye length was determined by laser Doppler interferometry and by two different ultrasound techniques, the applanation technique and the immersion technique. The cataract grade was determined by a commercial instrument that measures backscattered light. RESULTS: Laser Doppler interferometry worked very well except in the cases of the highest cataract grades (4% of the eyes of this study were not measurable because of a too-high lens density). Only 3.5% of the other eyes were not measurable because of fixation problems of the patients. The precision of laser Doppler interferometry is not influenced by the cataract grade (except the highest grade). The standard deviation of the geometric eye length is approximately 20 microns. Linear regression analysis revealed a very good correlation of laser Doppler interferometry and ultrasonic measurements, but a systematic difference was found. The eye lengths measured by laser Doppler interferometry were about 0.18 mm longer than those measured by the immersion technique and about 0.47 mm longer than those measured by the applanation technique. CONCLUSION: These differences are attributed to the laser Doppler interferometry results including the retinal thickness and indentation of the cornea by the applanation technique. The main advantages of the laser Doppler interferometry technique are high precision, high accuracy, and more comfort for the patient because it is a noncontact method, anesthesia is unnecessary, and the risk of corneal infection is avoided.

Adult↗

Laser interferometry: preoperative functional predictive value in retinal detachment.

PURPOSE: To determine the functional predictive value of laser interferometry (LI) in retinal detachment (RD). METHODS: Laser interferometry with test field diameters of 3 degrees and 8 degrees, both with and without light, was tested preoperatively in 42 eyes with rhegmatogenous RD that were candidates for scleral buckling. Snellen visual acuity (VA) and LI (four test fields) were tested preoperatively and postoperatively (1 week, and 1, 3, and 7 months). Sensitivity and specificity of LI to predict postoperative (7 months after surgery) VA improvement was calculated. Chi-square and Spearman correlation tests were used for statistical analysis. RESULTS: Statistically significant Snellen VA improvement (P = 0.02) was first found 7 months after surgery. Laser interferometry at 3 degrees without light showed statistically significant improvement 3 months after surgery (P = 0.05). Laser interferometry at 3 degrees without light showed the highest sensitivity (93%) and specificity (87%) values. The best correlation between preoperative LI and postoperative Snellen VA (7 months after surgery) was also found with 3 degrees LI without light (r = 0.71, P = 0.002). CONCLUSION: Laser interferometry (3 degrees without light) was useful in predicting VA improvement in cases with RD preoperatively and postoperatively. Laser interferometry at 3 degrees without light showed the best correlation with postoperative Snellen VA.

Adult↗

Cell volume and plasma membrane osmotic water permeability in epithelial cell layers measured by interferometry.

The development of strategies to measure plasma membrane osmotic water permeability (Pf) in epithelial cells has been motivated by the identification of a family of molecular water channels. A general approach utilizing interferometry to measure cell shape and volume was developed and applied to measure Pf in cell layers. The method is based on the cell volume dependence of optical path length (OPL) for a light beam passing through the cell. The small changes in OPL were measured by interferometry. A mathematical model was developed to relate the interference signal to cell volume changes for cells of arbitrary shape and size. To validate the model, a Mach-Zehnder interference microscope was used to image OPL in an Madin Darby Canine Kidney (MDCK) cell layer and to reconstruct the three-dimensional cell shape (OPL resolution < lambda/25). As predicted by the model, a doubling of cell volume resulted in a change in OPL that was proportional to the difference in refractive indices between water and the extracellular medium. The time course of relative cell volume in response to an osmotic gradient was computed from serial interference images. To measure cell volume without microscopy and image analysis, a Mach-Zehnder interferometer was constructed in which one of two interfering laser beams passed through a flow chamber containing the cell layer. The interference signal in response to an osmotic gradient was analyzed to quantify the time course of relative cell volume. The calculated MDCK cell plasma membrane Pf of 6.1 x 10(-4) cm/s at 24 degrees C agreed with that obtained by interference microscopy and by a total internal reflection fluorescence method. Interferometry was also applied to measure the apical plasma membrane water permeability of intact toad urinary bladder; Pf increased fivefold after forskolin stimulation to 0.04 cm/s at 23 degrees C. These results establish and validate the application of interferometry to quantify cell volume and osmotic water permeability in cell layers.

Animals↗

Comparison of laser interferometry and ultrasound A-scan in the measurement of axial length.

AIM: Laser interferometry is a new, non-contact technique for the measurement of axial length. In this study we compared measurements of axial length obtained with this technique with those obtained with ultrasound (A-scan). The reproducibility and examiner-dependency of the two methods were also analysed. METHODS: Patients presenting at the cataract assessment clinic were invited to participate in the study. Axial length measurements were obtained both by contact ultrasound (A-scan) and by non-contact laser interferometry (IOLMasterTM V1.1, Carl Zeiss, Jena, Germany). Intraocular lens powers were calculated using both sets of measurements. The coefficient of variation served as a measure of reproducibility. RESULTS: A total of 100 eyes in 100 patients were evaluated after informed consent had been obtained. Although estimates of axial length obtained with the two techniques were highly correlated, axial lengths obtained with the contact method (mean 23.35 mm, SD 1.81 mm) were consistently lower than those obtained with the non-contact method (mean 23.55 mm, SD 1.76 mm) and the difference was statistically significant (p < 0.001). The coefficient of variation was lower with laser interferometry (0.1%) than with the ultrasound technique (0.49%). CONCLUSIONS: Different estimates of axial length are obtained using contact and non-contact techniques, with the latter producing consistently higher measurements than the former. Laser interferometry provides more reproducible results that should improve the accuracy of measurements of axial length in the clinical setting.

Aged↗

Partial coherence laser interferometry vs conventional ultrasound biometry in intraocular lens power calculations.

AIMS: The purpose of the study was to compare optical biometry based on partial coherence laser interferometry (PCLI) principle to conventional ultrasound biometry in the accuracy of intraocular lens (IOL) power calculations. The role of partial coherence laser interferometry in pseudophakic axial length measurement was analysed in the study. METHODS: In a prospective randomised clinical trial, 100 patients undergoing phacoemulsification cataract surgery were randomised to undergo biometry by either partial coherence laser interferometry (IOL Master) or the applanation ultrasound technique. The IOL material, design and the IOL formula were standardized. The mean error and mean absolute error were calculated and compared using paired t-tests. RESULTS: One hundred patients were included in this prospective randomised trial, of whom 50 patients underwent optical biometry and 50 patients had biometry by applanation ultrasound. The mean age of patients in the PCLI group was 67 +/- 6 yrs as compared to 71 +/- 8 yrs in the ultrasound group (P > 0.05). The preoperative mean axial length was 23.47 +/- 1.1 mm in the PCLI group (range 20-27.6 mm) and 23.43 +/- 1.2 mm in the ultrasound group with a range of 20.1-27 mm (P > 0.05). The mean absolute error (MAE) in the PCLI group was 0.52 +/- 0.32 D (upper and lower 95% CI 0.62 and 0.42 respectively). The MAE in the ultrasound group was 0.62 +/- 0.4 D (upper and lower CI 0.73 and 0.50 D respectively). Eighty-seven per cent of patients were within +/- 1 D in the PCLI group as compared to 80% in the ultrasound group (P = 0.24). The MAE of axial length difference with optical biometry was 0.13 mm +/- 0.13 SD (range -0.42 to 0.78 mm) in the PCLI group and 0.19 +/- 0.13 mm in the ultrasound group. There was a mean shortening of the eye length in the PCLI group postoperatively. Optical biometry improved the post op refraction by 16% on retrospective IOL power calculations. Eight per cent failed biometry with IOL Master (dense cataracts (4%) and fixation instability due to macular degeneration (4%)). CONCLUSION: The non contact optical biometry using the partial coherence laser interferometry principle improves the predictive value for postoperative refraction and is a reliable tool in the measurement of intraocular distances in pseudophakic eyes.

Adult↗

A review of recent work in sub-nanometre displacement measurement using optical and X-ray interferometry.

This paper reviews recent work in the field of displacement measurement using optical and X-ray interferometry at the sub-nanometre level of accuracy. The major sources of uncertainty in optical interferometry are discussed and a selection of recent designs of ultra-precise, optical-interferometer-based, displacement measuring transducers presented. The use of X-ray interferometry and its combination with optical interferometry is discussed.

Interferometry↗

Recording depth and signal competition in heterodyne interferometry.

A common way to measure submicroscopic motion of the organ of Corti is heterodyne interferometry. The depth over which vibration can be accurately measured with heterodyne interferometry is determined by both the optics, which controls to what extent light from nonfocal planes reaches the photodetectors, and demodulation electronics, which determines to what extent signal generated by out-of-focal-plane light influences the measurements. The influence of a second reflecting surface is investigated theoretically and experimentally. By reviewing the theory of FM demodulation and showing tests with a Revox FM demodulator, it is demonstrated that the influence of a secondary signal on a measurement depends on the modulation index. Both high- and low-modulation index signals are encountered in heterodyne interferometry of the cochlea. Using a He-Ne-like diode laser (lambda = 638 nm), the border between low- and high-modulation signals is at a displacement of about 25-100 nm. Confocal interferometry reduces the magnitude of out-of-focus signals, and therefore their effect on vibration measurement. The response of the confocal system to reflected signals from two surfaces separated by distances encountered within the cochlear partition is shown. The results underscore the benefit of steep optical sectioning for intracochlear measurements.

Biomechanical Phenomena↗

Study of human precorneal tear film thickness and structure using laser interferometry.

The authors previously found that measurements of precorneal tear film thickness in animals, using laser interferometry and confocal microscopy, were larger than earlier estimates. They proposed that this occurred because optical methods did not disturb film structure and measured full thickness, including mucus. In the present study, tear film thickness was measured in humans. Coherent light was reflected from eyes and formed interference patterns. Thickness was determined from spacing of fringes. Mean thickness in six subjects was 34-45 microns, more than four times larger than earlier values. Validity and accuracy of measurements by interferometry were examined in our earlier study using confocal microscopy. Here it provided supportive evidence. Tear film thickness was estimated from optical sections through the corneas of three subjects to be 41-46 microns. Mucus content of the film also was examined. Interferometry was used to measure thinning after application of a mucolytic agent. There was no change in thickness after 5 min exposure to 0.1% (weight/volume) acetylcysteine. Solutions of 20% caused thinning to 11 microns, and thickness slowly increased to reach its original value over 40 min. Thus, the film seemed to be composed substantially of mucus, not aqueous fluid. The results also provided evidence that measurements by interferometry did not include underlying epithelium. Earlier nonoptical methods probably did not include the portion of the film that contained mucus. They seem to have greatly underestimated human tear film thickness.

Adult↗

Holographic interferometry and in vitro calcification: comparing pericardial versus porcine bioprostheses.

BACKGROUND AND AIMS OF THE STUDY: Structural valve deterioration of bioprostheses is mainly caused by progressive calcification. It has not yet been convincingly demonstrated whether pericardial or porcine bioprostheses are more prone to calcification. METHODS: A previously described in vitro test protocol consisting of non-destructive holographic interferometry, which permits quantitative deformation analysis of heart valves and accelerated dynamic calcification in vitro was used to evaluate five stented pericardial bioprostheses of different sizes and design (three or two leaflets) from one manufacturer. The extent of calcification was assessed after up to 20 x 10(6) cycles in the valve tester by microradiography, and areas of calcification were compared by holographic interferometry using computerized image processing. Calcification was confirmed by EDX-analysis and Von Kossa staining. Results were compared with in vitro testing of 25 porcine bioprostheses from different manufacturers. RESULTS: The tested pericardial bioprostheses had an individual distribution of mechanical stresses detectable by holographic interferometry, which resulted in different calcification of valve leaflets. A strong correlation between calcification and stress distribution was found (correspondence of affected areas: 82.3 +/- 10.1%, r = 0.97). Variability in calcification and stress distribution, respectively, of pericardial valves compared well with our findings for porcine prostheses. Overall, the extent of leaflet calcification was not statistically different for pericardial and porcine bioprostheses (p = 0.21). CONCLUSIONS: The biological material of bioprostheses (pericardial versus porcine) does not seem to be the crucial factor in the calcification process. Mechanical stresses detectable by holographic interferometry have a more pronounced impact and predict calcification of individual prostheses, at least in the in vitro setting.

Animals↗

Signal quality of biometry in silicone oil-filled eyes using partial coherence laser interferometry.

PURPOSE: To assess the practical feasibility and signal quality of axial length measurements by partial coherence laser interferometry in silicone oil-filled eyes with previous complicated vitreoretinal surgery. SETTINGS: Department of Ophthalmology, University Cologne, Cologne, Germany. METHODS: Using a Zeiss IOLMaster, axial length measurements and signal-to-noise ratios of optical biometry in silicone oil-filled eyes (n=45) and contralateral eyes without tamponade (n=41) were analyzed. RESULTS: Axial length measurements with signal-to-noise ratio > or =2 were feasible in 41 of 45 silicone oil-filled eyes (91%) and 37 of 41 eyes without tamponade (90%). Cataract, central retinal detachment, vitreous hemorrhage, and emulsified oil droplets attached to the intraocular lens were reasons for failure of partial coherence laser interferometry. The signal-to-noise ratio of the first 2 measurements was significantly smaller (P=.04) in silicone-filled eyes (4.4 +/- 2.0) than in eyes without tamponade (5.5 +/- 3.0). Axial lengths of the oil-filled eye and the contralateral eye showed a significant intraindividual correlation (P<.0001, Spearman r=0.84). CONCLUSIONS: Partial coherence laser interferometry shows good clinical practicability in silicone oil-filled eyes with previous complicated vitreoretinal surgery. Further studies are needed to assess the reliability of these measurements with regard to postoperative refraction after combined oil removal and cataract surgery.

Biometry↗

Comparison of laser interferometry and radiation force method of measuring ultrasonic power.

The aim of this paper is to compare two different methods for the calculation of the ultrasonic output power of underwater transducers: the radiation force balance, which is the standard method, and the laser heterodyne interferometry, which is rather used to depict displacement or velocity distributions of the acoustic field. Here it is shown that the latter can also be used to calculate the acoustic time-average power with an uncertainty of about 22%, the radiation force balance giving an uncertainty of 12% (with 95% confidence). The interferometry experiments performed with two transducers working at 2.25 MHz and 8.25 MHz showed that they produce different acoustic fields (respectively Gaussian and Lorentz-sigmoidal distributions). Taking into account the acoustic field profiles, the acoustic time-average power from interferometry was calculated. It was found very similar to the time-average power measured with the radiation force balance in the plane-wave assumption.

Acoustics↗

[Value of Lotmar interferometry with vision assessment for predicting visual acuity after surgery of epimacular membranes].

BACKGROUND: To determine the usefulness of preoperative Lotmar interferometry to predict visual acuity recovery after surgery for epimacular membrane. PATIENTS AND METHODS: From 1999 to 2001, thirty pseudophakic eyes that underwent surgery for removal of epimacular membrane were examined prospectively. Visual acuity (VA) was recorded with the ETDRS chart before surgery and 6 months or more after (mean follow-up: 7.5 months). Lotmar interferometry was performed before surgery and its result was compared with the VA measured after surgery. RESULTS: The mean preoperative VA was 0.4 - 3 (20/55). The Lotmar VA (mean: 0.5, 20/40) was lower than the final postoperative VA (mean: 0.66, 20/30), p < 0.001. The Lotmar VA was found within one ETDRS line of the final postoperative VA in 10 cases (33 %). The Lotmar VA was > 1 line lower than the final postoperative VA in 17 cases (57 %) and was 1 - 3 lines higher in 3 cases (10 %). CONCLUSIONS: Lotmar interferometry tends to underestimate the final postoperative VA after surgery for epimacular membrane. A low value does not allow any relevant prediction. A high value is interesting since the risk to have a false-positive is low.

Aged↗

Refractive outcome of silicone oil removal and intraocular lens implantation using laser interferometry.

PURPOSE: To evaluate the refractive outcome of silicone oil removal and intraocular lens (IOL) implantation using laser interferometry. METHODS: Thirteen silicone oil-filled eyes of 12 patients were included in the study. IOL power calculation was performed using laser interferometry (IOLMaster V1.1; Carl Zeiss, Jena, Germany). All of these eyes underwent silicone oil removal and cataract extraction with IOL implantation. Post-operative refraction was evaluated. RESULTS: The mean deviation of the final post-operative refraction (spherical equivalent) was -0.30+/-0.91 D (range, -1.87 to +1.3) at 12 weeks. The mean axial length of the eyes was 22.99+/-0.84 mm (range, 22.07-25.24 mm). No major complications occurred intra- or post-operatively. CONCLUSION: Laser interferometry appears to be a feasible and satisfactorily accurate method to calculate IOL power in some silicone oil-filled eyes. Further studies comparing this technique to others are warranted.

Adult↗

The application of interferometry to optical astronomical imaging.

In the first part of this review we survey the role optical/infrared interferometry now plays in ground-based astronomy. We discuss in turn the origins of astronomical interferometry, the motivation for its development, the techniques of its implementation, examples of its astronomical significance, and the limitations of the current generation of interferometric arrays. The second part focuses on the prospects for ground-based astronomical imaging interferometry over the near to mid-term (i.e. 10 years) at optical and near-infrared wavelengths. An assessment is made of the astronomical and technical factors which determine the optimal designs for imaging arrays. An analysis based on scientific capability, technical feasibility and cost argues for an array of large numbers of moderate-sized (2 m class) telescopes rather than one comprising a small number of much larger collectors.

Astronomy↗

Time-domain interferometry for direct electric field reconstruction of mid-infrared femtosecond pulses.

Mid-infrared ultrashort pulses of 9.2-microm center wavelength are characterized in both amplitude and phase. This is achieved by use of a variant of spectral phase interferometry for direct electric field reconstruction in which spectral interferometry has been replaced with time-domain interferometry, a technique that is well suited for infrared pulses. The setup permits simultaneous recording of the second-order interferometric autocorrelation, thus providing an independent check on the retrieved spectral phase.

Electricity↗

An investigation of CO2 laser scleral buckling using moiré interferometry.

BACKGROUND AND OBJECTIVE: To demonstrate suitability of moiré interferometry to assess and quantify laser-induced shrinkage of scleral collagen for buckling procedures. MATERIALS AND METHODS: Scleral buckling of human cadaver eyes was investigated using a Coherent Ultrapulse CO2 laser. Projection moiré interferometry was employed to determine the out-of plane displacement produced by laser exposure, and in-situ optical microscopy of reference markers on the eye was used to measure in-plane shrinkage. RESULTS: Measurements based on moiré interferometry allow a three dimensional view of shape changes in the eye surface as laser treatment proceeds. Out-of-plane displacement reaches up to 1.5 mm with a single laser spot exposure. In-plane shrinkage reached a maximum of around 30%, which is similar to that reported by Sasoh et al (Ophthalmic Surg Lasers. 1998;29:410) for a Tm:YAG laser. CONCLUSION: The moiré technique is found to be suitable for quantifying the effects of CO2 laser scleral shrinkage and buckling. This can be further developed to provide a standardized method for experimental investigations of other laser sources for scleral shrinkage.

Cadaver↗

Holographic interferometry.

Since its inception three decades ago, holographic interferometry has proven to be a powerful nondestructive testing technique for the measurement of displacement and its derivatives. It is a whole-field, noncontact method which requires the use of a hologram to record three-dimensional information about the surface of an object. After a stress is applied to the object, its new surface geometry is compared with the previously recorded state. Changes of the surface of the object, which are manifest as a series of interference fringes superimposed on the image of the object, can be observed statically or in real time to reveal the displacement. Current state-of-the-art techniques such as heterodyne and digital phase shifting interferometry, which have extended the resolution of holographic interferometry far beyond fringe counting, are reviewed. Particular emphasis is placed upon applications in biomedical engineering and medicine, although potentially applicable techniques from other disciplines are examined. The paper is broken into two main parts. In the first part, the scope and potential limitations of this branch of metrology are presented. In the second part, a review of applications in biomedical engineering is presented. The references cited in the first section are the seminal papers in the field. The applications section, which relies upon the results of the first section, presents a critical review of the literature by analyzing the results of a few representative studies.

Fiber Optic Technology↗