EP2638879A2

Silicone hydrogel lenses with water-rich surfaces

Abstract

Hydrated silicone hydrogel contact lens having a layered structural configuration: a low water content silicone hydrogel core (or bulk material) completely covered with a layer of a water-rich (e.g., a water content greater than 80%), hydrogel totally or substantially free of silicone. A hydrated silicone hydrogel contact lens of the invention possesses high oxygen permeability for maintaining the corneal health and a soft, water-rich, lubricious surface for wearing comfort.

EP2638879A2, drawing sheet 1
Sheet 1 of 53

Term

4.8 yearsto projected expiry

Projected expiry 29 July 2031, counted from filing; an application has no term until it is granted.

  1. Priority and filed
  2. Published
  3. Today
  4. Projected expiry

16 claims: 7 independent, 9 dependent

  1. 1
    A silicone hydrogel contact lens having a layered structural configuration and a water content gradient from inside to outside of the silicone hydrogel contact lens, comprising:a lower water content silicone hydrogel core (or bulk material) completely covered with an outer (surface) hydrogel layer having a higher water content and a thickness of at least about 0.1 µm, preferably from about 0.1 µm to about 20 µm, more preferably from about 0.25 µm to about 15 µm, even more preferably from about 0.5 µm to about 12.5 µm, most preferably from about 1 µm to about 10 µm as measured with atomic force microscopy across a cross section from the posterior surface to the anterior surface of the silicone hydrogel contact lens in fully hydrated state, wherein the outer hydrogel layer is substantially free of silicone, preferably totally free of silicone, and wherein the water content of the outer hydrogel layer is at least about 1.2 folds (or 120%), preferably at least about 1.3 folds (or 130%), more preferably at least about 1.4 folds (or 140%), even more preferably at least about 1.5 folds (or 150%), most preferably at least about 2 folds (or 200%), of the water content of the silicone hydrogel bulk material when being fully hydrated.
  2. 4
    The silicone hydrogel contact lens of any one of claims 1 to 3, wherein the silicone hydrogel contact lens has at least one property selected from the group consisting of:(a) an oxygen transmissibility of at least about 40, preferably at least about 60, more preferably at least about 80, even more preferably at least about 100, most preferably at least about 120, barrers/mm when being fully hydrated;(b) a surface silicon atomic percentage of about 5% or less, preferably about 4% or less, even more preferably about 3% or less, of total elemental percentage as measured by XPS analysis of the silicone hydrogel contact lens in dried state;(c) a surface hydrophilicity characterized by having a water breakup time of at least about 10 seconds when being fully hydrated;(d) a surface wettability characterized by having an averaged water contact angle of about 90 degrees or less, preferably about 80 degrees or less, more preferably about 70 degrees or less, even more preferably about 60 degrees or less, most preferably about 50 degrees or less when being fully hydrated;and combinations thereof.
  3. 6
    A silicone hydrogel contact lens, which comprises a silicone hydrogel inner layer (or bulk material) and two outer (surface) hydrogel layers, wherein the contact lens has an oxygen transmissibility of at least about 40 barrers/mm (preferably at least about 60, more preferably at least about 80, even more preferably at least about 100, most preferably at least about 120, barrers/mm) when being fully hydrated, wherein the silicone hydrogel bulk material has a bulk elastic modulus of from about 0.3 MPa to about 1.8 MPa (preferably from about 0.4 MPa to about 1.5 MPa, more preferably from about 0.5 MPa to about 1.2 MPa) when being fully hydrated, and wherein the outer hydrogel layer has a reduced surface modulus of at least about 20%, preferably at least about 25%, more preferably at least about 30%, even more preferably at least about 35%, most preferably at least about 40%, relative to the silicone hydrogel bulk material when being fully hydrated.
  4. 9
    The silicone hydrogel contact lens of any one of claims 6 to 8, wherein the silicone hydrogel contact lens has a surface silicon atomic percentage of about 5% or less, preferably about 4% or less, even more preferably about 3% or less, of total elemental percentage as measured by XPS analysis of the silicone hydrogel contact lens in dried state.
  5. 10
    The silicone hydrogel contact lens of any one of claims 6 to 8, wherein the silicone hydrogel contact lens has a surface hydrophilicity characterized by having a water breakup time of at least about 10 seconds when being fully hydrated.
  6. 11
    A silicone hydrogel contact lens, which comprises:a silicone hydrogel material as bulk material, an anterior surface and an opposite posterior surface;wherein the contact lens has (1) an oxygen transmissibility of at least about 40 barrers/mm (preferably at least about 60, more preferably at least about 80, even more preferably at least about 110, barrers/mm) when being fully hydrated, and (2) a good surface lubricity as characterized by having a critical coefficient of friction of 0.046 or less (preferably 0.043 or less, more preferably 0.040 or less) when being fully hydrated, wherein the anterior and posterior surfaces have a low surface concentration of negatively-charged groups including carboxylic acid groups as characterized by attracting at most about 200, preferably at most about 160, more preferably at most about 120, even more preferably at most about 90, most prefererably at most about 60 positively-charged particles in positively-charged-particles adhesion test.
  7. 13
    The silicone hydrogel contact lens of any one of claims 11 or 12, wherein the silicone hydrogel contact lens in fully hydrated state has a high digital-rubbing resistance as characterized by having no surface cracking lines visible under dark field after the silicone hydrogel contact lens in fully hydrated state is rubbed between fingers.