Metal sulfides are highly desirable materials for photocatalytic water splitting because of their appropriate energy bands. However, the poor stability under light illumination in water hinders their wide applications. Here, two-dimensional SnS2 nanosheets, along with carbon dots of the size around 10 nm, are uniformly grown on fluorine doped tin oxide glasses with a layer of nickel nanoparticles. Significantly, strong light absorption and enhanced photocurrent density are achieved after integration of SnS2 nanosheets with carbon dots. Notably, the rate of oxygen evolution reached up to 1.1 mmol g-1 h-1 under simulated sunlight irradiation featuring a good stability
Photoelectrochemical (PEC) water splitting could potentially solve the global energy crisis and envi...
Photoelectrochemical (PEC) water splitting is the potent technology to solve the global issues of en...
Transition metal sulfides exhibit chemical and physical properties that are of much scientific and t...
Metal sulfides are highly desirable materials for photocatalytic water splitting because of their ap...
Tin disulfide (SnS2) is a two-dimensional (2D) material with excellent properties and high prospects...
Two-dimensional (2D) metal dichalcogenides have emerged as attractive materials for application in p...
Two-dimensional SnSx (x = 1, 2) nanocrystals are attractive catalysts for photoelectrochemical water...
Tin disulfide (SnS2) is attracting significant interest due to the abundance of its elements and its...
Two-dimensional (2D) metal dichalcogenides, such as SnS2, have emerged as a potential material for p...
Tin disulfide is attractive as a potential visible-light photocatalyst because its elemental compone...
The photochemical synthesis of two-dimensional (2D) nanostructured from semiconductor materials is u...
Heterostructures formed by the growth of one kind of nanomaterial in/on another have attracted incre...
Constructing heterojunctions with face-to-face interface is a new avenue for accelerating the charge...
Rational architectural design and catalyst components are beneficial to improve the photoelectrochem...
Graphene-like two-dimensional layered materials have attracted quite a lot of interest because of th...
Photoelectrochemical (PEC) water splitting could potentially solve the global energy crisis and envi...
Photoelectrochemical (PEC) water splitting is the potent technology to solve the global issues of en...
Transition metal sulfides exhibit chemical and physical properties that are of much scientific and t...
Metal sulfides are highly desirable materials for photocatalytic water splitting because of their ap...
Tin disulfide (SnS2) is a two-dimensional (2D) material with excellent properties and high prospects...
Two-dimensional (2D) metal dichalcogenides have emerged as attractive materials for application in p...
Two-dimensional SnSx (x = 1, 2) nanocrystals are attractive catalysts for photoelectrochemical water...
Tin disulfide (SnS2) is attracting significant interest due to the abundance of its elements and its...
Two-dimensional (2D) metal dichalcogenides, such as SnS2, have emerged as a potential material for p...
Tin disulfide is attractive as a potential visible-light photocatalyst because its elemental compone...
The photochemical synthesis of two-dimensional (2D) nanostructured from semiconductor materials is u...
Heterostructures formed by the growth of one kind of nanomaterial in/on another have attracted incre...
Constructing heterojunctions with face-to-face interface is a new avenue for accelerating the charge...
Rational architectural design and catalyst components are beneficial to improve the photoelectrochem...
Graphene-like two-dimensional layered materials have attracted quite a lot of interest because of th...
Photoelectrochemical (PEC) water splitting could potentially solve the global energy crisis and envi...
Photoelectrochemical (PEC) water splitting is the potent technology to solve the global issues of en...
Transition metal sulfides exhibit chemical and physical properties that are of much scientific and t...