Synthesis and upconversion color Tunability luminescence of K5Yb(MoO4)4 phosphor doped with Er3+and optical temperature sensing applications

IF 5.1 2区 材料科学 Q1 MATERIALS SCIENCE, CERAMICS Ceramics International Pub Date : 2024-09-21 DOI:10.1016/j.ceramint.2024.09.219
Tiantian Yu , Xiaohui Zhang , Quan Tang , Xiaoying Zhong , Qiujuan Chen , Liya Zhou , Fuwang Mo
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Abstract

A series of double molybdates with palmierite-related structure phosphors K5Yb1-x (MoO4)4:xEr3+ were synthesized by a solid-state method. It has been demonstrated that the K5Yb1-x (MoO4)4: xEr3+ phosphors are capable of exhibiting the characteristic green and red UC emission of Er3+ ions with excitation at 980 nm. Moreover, the green light emission is far more than the red light emission, so that the sample emits a powerful green light, which belongs to the two-photon absorption process. The upconversion efficiency is peaked when the content of Er3+ ions is 10 mol %. The optical thermometry properties of phosphors were explored by observing that the green UC emission intensity is temperature dependent. The maximum sensor sensitivity of the studied phosphor was discovered to be about 1.61%K−1 at the optimum doping concentration. And the phosphor is demonstrated to have high thermal stability by temperature cycling test. Eventually, a green light-emitting diode device was realized by using synthesized particles and a 980 nm near-infrared chip, which can emit a more obvious green light when the voltage reaches 1.80 V and the current can reach 800 mA, thus confirming its applicability in solid-state lighting. And the LED devices have been tested for life stability with little or no light degradation. These properties make the phosphors not only suitable for non-contact optical temperature measurement, but also able to be applied to solid state lighting.
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掺杂 Er3+ 的 K5Yb(MoO4)4 荧光荧光粉的合成、上转换色彩调谐发光及光学温度传感应用
采用固态方法合成了一系列具有棕榈酸盐相关结构的双钼酸盐荧光粉 K5Yb1-x (MoO4)4:xEr3+。实验证明,在 980 纳米波长的激发下,K5Yb1-x (MoO4)4: xEr3+ 磷酸盐能够发出 Er3+ 离子特有的绿色和红色 UC 发射。而且,绿光发射远大于红光发射,因此样品发出的绿光很强,属于双光子吸收过程。当 Er3+ 离子含量为 10 mol % 时,上转换效率达到峰值。通过观察绿色 UC 发射强度与温度的关系,探索了荧光粉的光学测温特性。在最佳掺杂浓度下,所研究荧光粉的最大传感器灵敏度约为 1.61%K-1。温度循环测试证明了这种荧光粉具有很高的热稳定性。最终,利用合成的颗粒和 980 纳米近红外芯片实现了绿色发光二极管器件,当电压达到 1.80 V 时可发出较明显的绿光,电流可达 800 mA,从而证实了其在固态照明中的适用性。而且,LED 器件经过寿命稳定性测试,几乎没有光衰减。这些特性使荧光粉不仅适用于非接触式光学温度测量,而且还能应用于固态照明。
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来源期刊
Ceramics International
Ceramics International 工程技术-材料科学:硅酸盐
CiteScore
9.40
自引率
15.40%
发文量
4558
审稿时长
25 days
期刊介绍: Ceramics International covers the science of advanced ceramic materials. The journal encourages contributions that demonstrate how an understanding of the basic chemical and physical phenomena may direct materials design and stimulate ideas for new or improved processing techniques, in order to obtain materials with desired structural features and properties. Ceramics International covers oxide and non-oxide ceramics, functional glasses, glass ceramics, amorphous inorganic non-metallic materials (and their combinations with metal and organic materials), in the form of particulates, dense or porous bodies, thin/thick films and laminated, graded and composite structures. Process related topics such as ceramic-ceramic joints or joining ceramics with dissimilar materials, as well as surface finishing and conditioning are also covered. Besides traditional processing techniques, manufacturing routes of interest include innovative procedures benefiting from externally applied stresses, electromagnetic fields and energetic beams, as well as top-down and self-assembly nanotechnology approaches. In addition, the journal welcomes submissions on bio-inspired and bio-enabled materials designs, experimentally validated multi scale modelling and simulation for materials design, and the use of the most advanced chemical and physical characterization techniques of structure, properties and behaviour. Technologically relevant low-dimensional systems are a particular focus of Ceramics International. These include 0, 1 and 2-D nanomaterials (also covering CNTs, graphene and related materials, and diamond-like carbons), their nanocomposites, as well as nano-hybrids and hierarchical multifunctional nanostructures that might integrate molecular, biological and electronic components.
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