张思远 1,2张友昭 2李相伟 2,*张涛 1,**[ ... ]张书彦 2
作者单位
摘要
1 广州大学物理与材料科学学院,广东 广州 511442
2 东莞材料基因高等理工研究院,广东 东莞 523808
采用激光选区熔化(SLM)技术在H13模具钢顶部沉积了一种新型3D打印模具钢材料AM40,通过扫描电镜(SEM)和电子背散射衍射(EBSD)等方法,研究了热处理对AM40/H13双金属结构材料微观组织演变及其力学变形行为的影响。结果表明:沉积态AM40/H13双金属材料界面无裂纹缺陷,AM40侧呈现增材制造特有的Marangoni熔池特征,以及细小的胞状和柱状结构的马氏体组织,H13侧为粗大奥氏体组织,界面存在明显的组织不均匀性。经过1000 ℃淬火+560 ℃回火热处理后,熔池特征消失,H13侧形成均匀的板条马氏体,消除了界面晶粒尺寸和取向差的不均匀性,且界面处的元素扩散宽度增加60 μm。沉积态AM40/H13界面硬度为642 HV,高于AM40(529 HV)和H13(202 HV)。热处理消除了AM40/H13硬度的不均匀性,使整体平均硬度为480 HV。热处理后,AM40/H13双金属的抗拉强度从沉积态的644 MPa提高到1436 MPa,强度介于AM40和H13之间,断裂位置从沉积态的H13侧变为AM40侧,界面保持较高的强度和塑性。
激光技术 激光选区熔化 双金属结构 热处理 连接界面 微观组织 拉伸性能 
中国激光
2024, 51(16): 1602304
Author Affiliations
Abstract
1 School of Instrumentation and Optoelectronic Engineering, Beihang University, Beijing 100083, China
2 Singapore Bioimaging Consortium, Agency for Science, Technology, and Research (A*STAR), Singapore 138667, Singapore
3 Institute of Microelectronics, Agency for Science, Technology, and Research (A*STAR), Singapore 138634, Singapore
The flexibile nature of optical fiber enables it to offer remote-access capabilities, which could be used in many biomedical applications. This review focuses on different micro- and nano-structured fiber probes for applications in biosensing, imaging, and stimulations. The modifications to fiber could extend design freedom from waveguide optimization to functional material integration. Fiber probes with optimized waveguide structures or integrated functional materials could achieve enhanced optical mode interaction with biosamples, and hence obtain ultrasensitive biosensors with a remarkably low limit of detection. Furthermore, bioimaging with a high spatial resolution can be obtained by engineering dispersion and nonlinearity of light propagation in the fiber core or designing a metal-coated tapered fiber tip with a sub-wavelength aperture. Flat metasurfaces can be assembled on a fiber tip to achieve a large depth of focus and remove aberrations. Fiber is also a compact solution to realize the precise delivery of light for in vivo applications, such as deep brain stimulation. The optical beam size, shape, and direction could be steered by the probe parameters. Micro- and nano-technologies integrated with fiber contribute to various approaches to further improve detection limit, sensitivity, optical resolution, imaging depth, and stimulation precision.
Photonics Research
2020, 8(11): 11001703

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