Method for manufacturing a copper-containing polyurethane foam
A manufacturing method described in the present invention provides antimicrobial copper-containing polyurethane foams by embedding microparticles of metallic copper (Cu), cuprous oxide (Cu 2 O), cupric oxide (CuO), or cuprous iodide (CuI), or combinations thereof, into polyurethane foams, wherein said microparticles are homogenously distributed throughout the formed polymeric matrix of said foam. The method combines these copper-containing microparticles, or polyurethane liquid additive containing these particles, mixed in polyol with isocyanate.
1 . A method for manufacturing antimicrobial polyurethane foams, said polyurethane foams embedding homogeneously distributed copper-containing microparticles, said method comprising:
Providing a polyurethane liquid additive obtained according to a method comprising:
A. Mixing dried microparticles of metallic copper (Cu), cuprous oxide (Cu 2 O), cupric oxide (CuO), or cuprous iodide (CuI), or combinations thereof, having size of 100 nm to 5 μm with alkylammonium salt copolymer and polyol to a final concentration in the range of about 5-80% w/w of Cu, Cu 2 O, CuO or CuI, or combinations thereof, to produce a suspension of the copper-containing microparticles in polyol;
B. Stirring said suspension to obtain a dispersion of the copper-containing microparticles in polyol; and
C. Cooling the dispersion and drying it by evaporating air from said dispersion in vacuum, thereby forming a semi-solid concentrate of a polyurethane liquid additive;
II. Mixing said polyurethane liquid additive obtained in Step (Ib), with additional polyol to form a polyol mixture having a desired concentration of Cu, Cu 2 O, CuO or CuI; and
III. Introducing isocyanate into the resulted polyol mixture of Step (II), thereby forming a stable polyurethane foam, in which the microparticles of Cu, Cu 2 O, CuO or CuI, or combinations thereof, are homogenously embedded and distributed throughout the formed polymeric matrix of said foam.
2 . The method of claim 1 , wherein said microparticles are metallic copper (Cu) microparticles, and the resulted polyurethane foam contains the Cu microparticles embedded and homogenously distributed throughout the formed polymeric matrix of said foam.
3 . The method of claim 1 , wherein said microparticles are cuprous oxide (Cu 2 O) microparticles, and the resulted polyurethane foam contains the Cu 2 O microparticles embedded and homogenously distributed throughout the formed polymeric matrix of said foam.
4 . The method of claim 1 , wherein said microparticles are cupric oxide (CuO) microparticles, and the resulted polyurethane foam contains the CuO microparticles embedded and homogenously distributed throughout the formed polymeric matrix of said foam.
5 . The method of claim 1 , wherein said microparticles are cuprous iodide (CuI) microparticles, and the resulted polyurethane foam contains the CuI microparticles embedded and homogenously distributed throughout the formed polymeric matrix of said foam.
6 . The method of claim 1 , wherein said microparticles contain any mixture selected from Cu/Cu 2 O, Cu/CuO, Cu/CuI, Cu 2 O/CuO, Cu 2 O/CuI, CuO/CuI, Cu/Cu 2 O/CuO, Cu/Cu 2 O/CuI, Cu/CuO/CuI, Cu 2 O/CuO/CuI, and Cu/Cu 2 O/CuO/CuI, and the resulted polyurethane foam contains any microparticles combination selected from the Cu/Cu 2 O, Cu/CuO, Cu/CuI, Cu 2 O/CuO, Cu 2 O/CuI, CuO/CuI, Cu/Cu 2 O/CuO, Cu/Cu 2 O/CuI, Cu/CuO/CuI, Cu 2 O/CuO/CuI, and Cu/Cu 2 O/CuO/CuI microparticles embedded and homogenously distributed throughout the formed polymeric matrix of said foam.
7 . The method of claim 1 , wherein said polyol is selected from xylitol, maltitol, sorbitol, polyethylene glycol (PEG), polypropylene glycol (PPG), glycerol, polyvinyl alcohol and polymeric polyols, such as polyether polyol and polyester polyol, or combinations thereof.
8 . The method of claim 7 , wherein said polyol is polyethylene glycol (PEG) or polypropylene glycol (PPG).
9 . The method of claim 1 , wherein said isocyanate is selected from diisocyanates.
10 . The method of claim 9 , wherein said diisocyanate is selected from aromatic diisocyanates and aliphatic diisocyanates.
11 . The method of claim 10 , wherein said aromatic diisocyanate is diphenylmethane diisocyanate (MDI) or toluene diisocyanate (TDI).
12 . The method of claim 10 , wherein said aliphatic diisocyanate is hexamethylene diisocyanate (HDI) or isophorone diisocyanate (IPDI).