Near-infrared emissive graphene quantum dots method of manufacture and uses thereof
The present disclosure comprises graphene quantum dots that exhibit emission in the near-infrared region in response to a variety of excitation wavelengths. The exciting wavelengths may be in the visible region, near-infrared region, or both. The quantum dots may be synthesized via a top-down method or a bottom-up method. The quantum dots are useful in imaging, drug delivery, and biosensing. The quantum dots comprise carbon, oxygen, hydrogen, nitrogen, and metal atoms in various combinations.
1. A method for producing a near-infrared emitting graphene quantum dot, the method comprising the steps of:
forming a homogenous suspension of water, reduced graphene oxide in a concentration of 0.2 mg/ml and 1.5 ml of a 5 volume % solution of sodium hypochlorite;
then exposing/irradiating the suspension with UV radiation of 302 nm for 2 hours to thereby form a graphene quantum dot;
wherein the graphene quantum dot so formed exhibits fluorescence emission in the near-infrared region.
2. The method for producing the graphene quantum dot of claim 1 , wherein the graphene quantum dot formed has a diameter between 1 nanometer and 10 nanometers.
3. The method for producing the graphene quantum dot of claim 2 , wherein the graphene quantum dot formed has an atomic percentage of carbon ranging from 50% to 90% and an atomic percentage of oxygen ranging from 10% to 50%.
4. A method for producing a near-infrared emitting graphene quantum dot, the method comprising the steps of:
forming an aqueous solution of 0.04 M glucosamine or glucosamine hydrochloride and an 0.008 M aqueous solution of Nd(NO 3 ) 3 ·6H 2 O;
microwaving the aqueous solution for 60 minutes at 1000-2000 W to thereby form a graphene quantum dot;
wherein the graphene quantum dot so formed exhibits fluorescence emission in the near-infrared region.
5. The method for producing the graphene quantum dot of claim 4 , wherein the graphene quantum dot so formed has a diameter between 2 nanometers and 20 nanometers.
6. The method for producing the graphene quantum dot of claim 5 , wherein the graphene quantum dot so formed has an atomic percentage of carbon ranging from 50% to 99.5%, an atomic percentage of oxygen ranging from 0.5% to 50%, an atomic percentage of nitrogen ranging from 0% to 50%, and an atomic percentage of a metal ranging from 0% to 20%.
7. A method for producing a near-infrared emitting graphene quantum dot, the method comprising the steps of:
forming an aqueous solution of 0.04 M glucosamine or glucosamine hydrochloride and an 0.009 M aqueous solution of Tm(COOCH 3 ) 3 ·4H 2 O;
microwaving the aqueous solution for 60 minutes at 1000-2000 W to thereby form a graphene quantum dot;
wherein the graphene quantum dot so formed exhibits fluorescence emission in the near-infrared region.
8. The method for producing the graphene quantum dot of claim 7 , wherein the graphene quantum dot so formed has a diameter between 2 nanometers and 20 nanometers.
9. The method for producing the graphene quantum dot of claim 8 , wherein the graphene quantum dot so formed has an atomic percentage of carbon ranging from 50% to 99.5%, an atomic percentage of oxygen ranging from 0.5% to 50%, an atomic percentage of nitrogen ranging from 0% to 50%, and an atomic percentage of a metal ranging from 0% to 20%.