QUANTUM DOT, QUANTUM DOT COMPOSITE, DISPLAY PANEL, AND ELECTRONIC DEVICE INCLUDING SAME
A quantum dot, a quantum dot composite including the quantum dot, a display panel including the quantum dot composite, and an electronic device including the display panel are provided. The quantum dot includes indium, zinc, phosphorus, and selenium, and does not include cadmium, and has an optical density (OD) per 1 mg for a wavelength of 450 nm of from about 0.2 to about 0.27 and an emission peak of from about 500 nm to about 550 nm, or an optical density per 1 mg for a wavelength of about 450 nm of from about 0.5 to about 0.7 and an emission peak of from about 610 nm to about 660 nm.
1 . A display panel comprising a quantum dot composite,
wherein the quantum dot composite comprises a matrix, and a plurality of quantum dots dispersed in the matrix,
wherein the plurality of quantum dots comprises indium, zinc, phosphorus, and selenium, and optionally sulfur, and does not include cadmium,
wherein the plurality of quantum dots comprises first quantum dots and second quantum dots, and
wherein the first quantum dots have an optical density per 1 mg at a wavelength of 450 nm in a range of about 0.2 to about 0.27, and an emission peak of from about 500 nm to about 550 nm, and
wherein the second quantum dots have an optical density per 1 mg at a wavelength of 450 nm in a range of about 0.5 to about 0.7, and an emission peak of from about 610 nm to about 660 nm.
2 . The display panel of claim 1 , wherein the first quantum dots have an optical density per 1 mg at a wavelength at 460 nm in a range of about 0.12 to about 0.35, and/or an emission peak of from about 530 nm to about 540 nm.
3 . The display panel of claim 1 , wherein the second quantum dots have an optical density per 1 mg for a wavelength at 460 nm in a range of about 0.4 to about 0.5, and/or an emission peak of from about 635 nm to about 645 nm.
4 . The display panel of claim 1 , wherein the plurality of quantum dots comprises a semiconductor nanocrystal core comprising indium and phosphorus, and a semiconductor nanocrystal shell disposed on the semiconductor nanocrystal core, the nanocrystal shell comprising zinc and selenium.
5 . The display panel of claim 4 , wherein the semiconductor nanocrystal shell further comprises sulfur.
6 . The display panel of claim 4 , wherein the semiconductor nanocrystal shell comprises a first semiconductor nanocrystal shell disposed on the semiconductor nanocrystal core, the first nanocrystal shell comprising zinc and selenium, and optionally sulfur, and a second semiconductor nanocrystal shell disposed on the first semiconductor nanocrystal shell, the second nanocrystal shell comprising zinc and sulfur, and optionally selenium.
7 . The display panel of claim 1 , wherein in the first quantum dots, the second quantum dots, or the first and second quantum dots, a weight ratio of zinc to indium (Zn/In) is greater than or equal to about 10 and less than or equal to about 30, and a weight ratio of selenium to indium (Se/In) is greater than or equal to about 2.9 and less than or equal to about 20.
8 . A display panel comprising a quantum dot composite,
the quantum dot composite comprising a matrix, and a plurality of quantum dots and titanium dioxide dispersed in the matrix,
wherein the plurality of quantum dots comprises indium, zinc, phosphorus, and selenium, and
wherein the display panel has a weight ratio of indium to titanium (In/Ti) that is greater than or equal to about 0.1 and less than or equal to about 0.7, a weight ratio of phosphorus to titanium (P/Ti) that is greater than or equal to about 0.05 and less than or equal to about 0.2.
9 . The display panel of claim 8 , wherein the display panel comprises a color conversion layer comprising a plurality of regions including a color conversion region, and the quantum dot composite is disposed in the color conversion region.
10 . The display panel of claim 9 , further comprising
a light emitting panel including a light emitting source configured to emit blue light, a light emitting source configured to emit green light, or a combination thereof,
wherein the color conversion layer comprises a first color conversion region configured to convert blue light and/or green light emitted from the light emitting panel into light of a first emission spectrum, a second color conversion region configured to convert blue light and/or green light emitted from the light emitting panel into light of a second emission spectrum, or a combination thereof.
11 . The display panel of claim 10 , wherein the plurality of regions of the color conversion layer further comprise a light transmitting region configured to transmit blue light and/or green light emitted from the light emitting panel.
12 . The display panel of claim 10 , wherein the first emission spectrum is a green emission spectrum having an emission peak wavelength of from about 500 nm to about 550 nm, and in the first color conversion region, a weight ratio of selenium to titanium (Se/Ti) is greater than or equal to about 2 and less than or equal to about 12.
13 . The display panel of claim 12 , wherein in the first color conversion region, a weight ratio of indium to titanium (In/Ti) is greater than or equal to about 0.2 and less than or equal to about 1.8, and a weight ratio of phosphorus to titanium (P/Ti) is greater than or equal to about 0.05 and less than or equal to about 0.4.
14 . The display panel of claim 10 , wherein the second emission spectrum is a red emission spectrum having an emission peak wavelength of from about 610 nm to about 660 nm, and in the second color conversion region, a weight ratio of selenium to titanium (Se/Ti) is greater than or equal to about 1 and less than or equal to about 5.
15 . The display panel of claim 14 , wherein in the second color conversion region, a weight ratio of indium to titanium (In/Ti) is greater than or equal to about 0.1 and less than or equal to about 0.5, and a weight ratio of phosphorus to titanium (P/Ti) is greater than or equal to about 0.05 and less than or equal to about 0.2.
16 . The display panel of claim 10 , wherein in the first color conversion region, a weight ratio of In to titanium (In/Ti) is greater than or equal to about 0.2 and less than or equal to about 1.5, a weight ratio of phosphorus to titanium (P/Ti) is greater than or equal to about 0.1 and less than or equal to about 0.3, and a weight ratio of selenium to titanium (Se/Ti) is greater than or equal to about 3 and less than or equal to about 10.
17 . The display panel of claim 10 , wherein in the second color conversion region, a weight ratio of indium to titanium (In/Ti) is greater than or equal to about 0.2 and less than or equal to about 0.4, a weight ratio of phosphorus to titanium (P/Ti) is greater than or equal to about 0.1 and less than or equal to about 0.3, and a weight ratio of selenium to titanium (Se/Ti) is greater than or equal to about 1.2 and less than or equal to about 3.
18 . The display panel of claim 8 , wherein the plurality of quantum dots comprises a semiconductor nanocrystal core comprising indium and phosphorus, and a semiconductor nanocrystal shell disposed on the semiconductor nanocrystal core, the nanocrystal shell comprising zinc and selenium, and optionally, sulfur.
19 . The display panel of claim 8 , wherein the matrix comprises a polymerizable monomer having a carbon-carbon double bond, an organic solvent, a polymer, a thiol compound having at least one thiol group, or a combination thereof.
20 . An electronic device comprising the display panel of claim 8 .
21 . The display panel of claim 8 , wherein the display panel has a weight ratio of selenium to titanium (Se/Ti) that is greater than or equal to about 0.5 and less than or equal to about 5.
22 . The display panel of claim 8 , wherein the display panel has a weight ratio of selenium to titanium (Se/Ti) that is greater than or equal to about 0.5 and less than or equal to about 3.