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Most trials that study the lens movement of accommodative intraocular lens (IOLs) use pilocarpine to stimulate ciliary muscle contraction.
To dynamically evaluate contact lens movement and ocular surface shape using ultrahigh-resolution and ultralong-scan-depth optical coherence tomography (OCT).
The graded boundary will also minimise the perception of contact lens movement.
Improved dim-light image formation comes at the cost of reduced depth of focus and reduction of potential accommodative lens movement.
The posterior vitreous zonules have been suggested to control the magnitude of centripetal lens movement (Lütjen-Drecoll et al., 2010; Croft et al., 2013).
Therefore, an overall diameter of 13.0 mm has been recommended for sulcus fixated IOLs to prevent subluxation and unexpected lens movement, in addition to optic diameter of 6.0 mm to avoid glare symptoms in case of mild postoperative decentration [ 1].
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This feature allows tilting and shifting lens movements to be adjusted in parallel or at right angles to each other, with detents at 45˚ intervals.
We observed two prospective lens movements: pinwheel movement and compaction.
This paper reports the design, simulation, fabrication and characterization of a piezoelectric actuation structure for out-of-plane micro-lens movement.
To compare visual acuity, intraocular lens (IOL) movement, and depth of focus with the Crystalens HD single-optic accommodating IOL and the Tecnis ZCB00 aspheric monofocal IOL.
To investigate intraocular lens (IOL) movement, measured as a change in anterior chamber depth (ACD) caused by pilocarpine-induced ciliary muscle contraction.
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