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    • 43. 发明授权
    • Contact lens that facilitates antenna communication via sensor impedance modulation
    • 通过传感器阻抗调制方便天线通讯的隐形眼镜
    • US08870370B1
    • 2014-10-28
    • US13625835
    • 2012-09-24
    • Brian OtisNathan Pletcher
    • Brian OtisNathan Pletcher
    • G02C7/00A61B3/00G02C7/04
    • G02C7/04A61B5/0002A61B5/01A61B5/14532A61B5/14546A61B5/6821
    • Systems, contact lenses and methods that facilitate antenna communication via sensor impedance modulation are provided. In one aspect, a system can include a contact lens and a radio frequency (RF) reader. The contact lens can include a substrate; an RF antenna, disposed on or within the substrate; and a sensing component, disposed on or within the substrate, and directly coupled to the RF antenna, wherein the RF antenna is configured to change impedance value as a sensed value of the sensing component changes. The RF reader is external to the contact lens, and configured to interrogate the RF antenna with an RF signal. The RF reader can receive a reflected RF signal from the RF antenna in response to the interrogation. The magnitude, phase and/or a frequency of the reflected RF signal can be based on the impedance value of the RF antenna.
    • 提供了通过传感器阻抗调制促进天线通信的系统,隐形眼镜和方法。 在一个方面,系统可以包括隐形眼镜和射频(RF)读取器。 隐形眼镜可以包括基底; 设置在基板上或内部的RF天线; 以及感测部件,其设置在所述基板上或所述基板内并且直接耦合到所述RF天线,其中所述RF天线被配置为随着所述感测部件的感测值改变而改变阻抗值。 RF读取器在隐形眼镜的外部,并被配置为用RF信号询问RF天线。 RF读取器可以响应于询问而从RF天线接收反射的RF信号。 反射RF信号的幅度,相位和/或频率可以基于RF天线的阻抗值。
    • 44. 发明授权
    • Methods and devices for refractive correction of eyes
    • 眼睛屈光矫正的方法和装置
    • US08827448B2
    • 2014-09-09
    • US13682527
    • 2012-11-20
    • Junzhong Liang
    • Junzhong Liang
    • G02C7/00
    • A61B3/103A61B3/0025A61B3/0285A61B3/1015A61B3/185G01M11/0228G02C7/02G02C7/022G02C7/027G02C2202/22
    • Methods and devices are provided to obtain refractive correction with superior visual acuity (e.g., 20/10) by achieving an astigmatism-free customized refractive correction. The astigmatism-free customized refractive correction involves obtaining an objective and precise measurement of cylindrical power in a resolution between 0.01 D and 0.10 D in an eye using an objective aberrometer, reliably relating the cylindrical axis obtained from the objective aberrometer to that in a phoroptor, determining an optimized focus error of an eye through subjective refraction with a phoroptor, generating a customized refraction by combining the objective measured cylindrical power, the objective measured cylindrical axis, and the subjectively measured focus power, fabricating a custom lens with a tolerance finer than 0.09 D based on the generated customized refraction, and delivering an ophthalmic lens that can provide an astigmatism-free refractive correction for an eye.
    • 提供了通过实现无像散的定制屈光矫正来获得具有优异视力(例如,20/10)的屈光矫正的方法和装置。 无像差的定制屈光矫正涉及使用目标像差仪在眼睛内以0.01D和0.10D之间的分辨率获得圆柱光焦度的客观和精确的测量,可靠地将从目标像差仪获得的圆柱轴与陀螺仪中的圆柱轴相关联, 通过主观折射来确定眼睛的优化聚焦误差,通过组合目标测量的柱面光焦度,物镜测量的圆柱轴和主观测量的焦点焦距来产生定制的折射,制造具有比0.09宽的公差的定制镜片 D,基于生成的定制折射,以及递送可以为眼睛提供无像散的屈光矫正的眼科镜片。
    • 48. 发明授权
    • Free-standing two-sided device fabrication
    • 独立的双面设备制造
    • US08579434B2
    • 2013-11-12
    • US13278026
    • 2011-10-20
    • Babak AmirparvizAndrew Lingley
    • Babak AmirparvizAndrew Lingley
    • G02C7/00G02C7/02G02C7/04
    • G02C7/04H01L31/02162H01L31/02165H01L31/02167H01L31/022416H01L31/022441H01L31/068H01L31/103Y02E10/547
    • Solar cells attached to a contact lens are provided, as well as methods for making the solar cells and contact lenses. The solar cells have electrodes on only one side of the device, which facilitates attachment of the solar cell to a contact lens. In one embodiment, the solar cells are made using a “two sided” process. By using the two-sided process, solar cells of only a few microns in thickness can be fabricated. Such relatively thin solar cells can be incorporated into a contact lens without discomfort to the wearer. By providing an infinitely renewable power source on a contact lens, the solar cells enable the use of electronic components on the contact lens while eliminating the recharging or replacing issues that arise with batteries.
    • 提供了附着于隐形眼镜的太阳能电池,以及制造太阳能电池和隐形眼镜的方法。 太阳能电池仅在设备的一侧具有电极,这有助于将太阳能电池连接到隐形眼镜。 在一个实施例中,使用“双面”方法制造太阳能电池。 通过使用双面工艺,可以制造仅几微米厚的太阳能电池。 这种相对薄的太阳能电池可以并入到隐形眼镜中,而不会对佩戴者造成不适。 通过在隐形眼镜上提供无限可再生的电源,太阳能电池能够在隐形眼镜上使用电子部件,同时消除充电或更换电池产生的问题。
    • 49. 发明授权
    • Toric intraocular lens with spatially-variant astigmatism
    • 具有空间变异散光的圆锥人工晶状体
    • US08562131B2
    • 2013-10-22
    • US13544593
    • 2012-07-09
    • Huawei Zhao
    • Huawei Zhao
    • G02C7/00G02C7/02G02C7/08
    • G02C7/04A61F2/1613A61F2/1637A61F2250/0053G02C7/028G02C7/041G02C7/045G02C2202/02
    • An intraocular lens for correcting or reducing the astigmatism of a cornea includes a pupil that is spatially divided into discrete zones, with each zone having a particular astigmatism magnitude and astigmatism orientation. In one embodiment, the zones all have the same astigmatism magnitude, which is equal and opposite the cornea astigmatism magnitude to within a particular tolerance, such as 0.25 diopters. In one embodiment, some or all of the zones all have different astigmatism orientations, with the angular separation between astigmatism orientations being on the order of the rotational misalignment tolerance of the lens to the cornea. The visual performance of such a lens deteriorates more slowly with rotational misalignment, when compared to a comparable lens having a uniform astigmatism orientation across its entire pupil, leading to more relaxed tolerances for a surgeon that implants the lens.
    • 用于矫正或减少角膜散光的眼内透镜包括在空间上分成离散区域的瞳孔,每个区域具有特定的散光大小和像散取向。 在一个实施例中,这些区域都具有相同的散光大小,其等于和相反的角膜散光幅度在特定容限内,例如0.25屈光度。 在一个实施例中,一些或全部区域都具有不同的像散取向,像散取向之间的角度间隔在镜片与角膜的旋转不对准公差的数量级上。 当与其整个瞳孔具有均匀的散光取向的可比较的镜片相比时,这种镜片的视觉性能变得更慢,因为旋转未对准,导致植入镜片的外科医生的更宽松的公差。