Luminescent composition and luminescent layer and electroluminescence device comprising same
A composition and group technology, applied in the direction of electrical solid devices, electrical components, luminescent materials, etc., can solve the problems of concentration quenching, lack of host materials, and scarcity of blue phosphorescent materials
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Embodiment 1
[0157] The tetrahydrofuran solution was passed through a 0.25-micron filter membrane, and moved into a glove box filled with nitrogen gas. Nitrogen gas was passed into the tetrahydrofuran solution, and the air was removed by bubbling for 30 minutes. The host material HS-13 was dissolved in the above-treated tetrahydrofuran to prepare a 100 micromolar (100 μM) solution. The intensity of the emission peak of the host material HS-13 at this concentration was measured. Weigh the same weight of the guest material Pt-36, and add it to the above solution in sequence, so that the concentration of Pt-36 in the solution is 10 μM, 20 μM, 30 μM, 40 μM, 50 μM, 60 μM, 70 μM. For each concentration change, measure the peak intensity of the host material at the corresponding concentration.
Embodiment 2
[0159] The tetrahydrofuran solution was passed through a 0.25-micron filter membrane, and moved into a glove box filled with nitrogen gas. Nitrogen gas was passed into the tetrahydrofuran solution, and the air was removed by bubbling for 30 minutes. The host material HS-13 was dissolved in the above-treated tetrahydrofuran to prepare a 100 micromolar (100 μM) solution. The intensity of the emission peak of the host material HS-13 at this concentration was measured. Weigh the same weight of the guest material Pt-45, and add it to the above solution in sequence, so that the concentration of Pt-45 in the solution is 10 μM, 20 μM, 30 μM, 40 μM, 50 μM, 60 μM, 70 μM. For each concentration change, measure the peak intensity of the host material at the corresponding concentration.
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