thin film preparation
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2022 ◽  
Vol 123 ◽  
pp. 111909
Author(s):  
Zahra Heydari ◽  
Mahdi Madani ◽  
Niloofar Majidian-Taleghani ◽  
Razieh Teimouri ◽  
Hamed abdy ◽  
...  

Nanomaterials ◽  
2021 ◽  
Vol 12 (1) ◽  
pp. 14
Author(s):  
Kateřina Děcká ◽  
Jan Král ◽  
František Hájek ◽  
Petr Průša ◽  
Vladimir Babin ◽  
...  

Lead halide perovskite nanocrystals of the formula CsPbBr3 have recently been identified as potential time taggers in scintillating heterostructures for time-of-flight positron emission tomography (TOF-PET) imaging thanks to their ultrafast decay kinetics. This study investigates the potential of this material experimentally. We fabricated CsPbBr3 thin films on scintillating GGAG:Ce (Gd2.985Ce0.015Ga2.7Al2.3O12) wafer as a model structure for the future sampling detector geometry. We focused this study on the radioluminescence (RL) response of this composite material. We compare the results of two spin-coating methods, namely the static and the dynamic process, for the thin film preparation. We demonstrated enhanced RL intensity of both CsPbBr3 and GGAG:Ce scintillating constituents of a composite material. This synergic effect arises in both the RL spectra and decays, including decays in the short time window (50 ns). Consequently, this study confirms the applicability of CsPbBr3 nanocrystals as efficient time taggers for ultrafast timing applications, such as TOF-PET.


2021 ◽  
Author(s):  
Roman Koning ◽  
Hildo Vader ◽  
Martijn van Nugteren ◽  
Peter Grocutt ◽  
Wen Yang ◽  
...  

Abstract Speed and efficiency of data collection and image processing in cryo electron microscopy have increased over the last decade. However, cryo specimen preparation techniques have lagged behind and faster, more reproducible specimen preparation devices are needed. Here we present a new vitrification device with highly automated sample handling, requiring only limited user interaction. Moreover, the device allows inspection of thin films using light microscopy, since excess liquid is removed through suction by tubes, not blotting paper. In combination with dew-point control, this enables thin film preparation in a controlled and reproducible manner. The advantage is that quality of the prepared cryo specimen is characterized prior to electron microscopy data acquisition. Practicality and performance of the device are illustrated by experimental results obtained by vitrification of protein suspensions, lipid vesicles, bacterial and human cells, followed by imaged using single particle analysis, cryo electron tomography and cryo correlated light and electron microscopy.


Micromachines ◽  
2021 ◽  
Vol 12 (9) ◽  
pp. 1135
Author(s):  
Natsumi Takai ◽  
Kan Shoji ◽  
Tei Maki ◽  
Ryuji Kawano

Solid-state nanopores are widely used as a platform for stochastic nanopore sensing because they can provide better robustness, controllable pore size, and higher integrability than biological nanopores. However, the fabrication procedures, including thin film preparation and nanopore formation, require advanced micro-and nano-fabrication techniques. Here, we describe the simple fabrication of solid-state nanopores in a commercially available material: a flat thin carbon film-coated micro-grid for a transmission electron microscope (TEM). We attempted two general methods for nanopore fabrication in the carbon film. The first method was a scanning TEM (STEM) electron beam method. Nanopores were fabricated by irradiating a focused electron beam on the carbon membrane on micro-grids, resulting in the production of nanopores with pore diameters ranging from 2 to 135 nm. The second attempt was a dielectric breakdown method. In this method, nanopores were fabricated by applying a transmembrane voltage of 10 or 30 V through the carbon film on micro-grids. As a result, nanopores with pore diameters ranging from 3.7 to 1345 nm were obtained. Since these nanopores were successfully fabricated in the commercially available carbon thin film using readily available devices, we believe that these solid-state nanopores offer great utility in the field of nanopore research.


2021 ◽  
Vol 129 (7) ◽  
pp. 485-488
Author(s):  
Akira SARUWATARI ◽  
Kayano SUNADA ◽  
Toshihiro ISOBE ◽  
Sachiko MATSUSHITA ◽  
Takeshi NAGAI ◽  
...  

2021 ◽  
pp. 413174
Author(s):  
Yuxin Shi ◽  
Pengwei Zhai ◽  
Lixiang Meng ◽  
Zongyin Huang ◽  
Guoqiang Li

2021 ◽  
Vol 44 ◽  
pp. 3420-3425
Author(s):  
Momang A. Yusuf ◽  
Kurniati Abidin ◽  
Ajeng Eliyana ◽  
Jasruddin D. Malago ◽  
Fatimah A. Noor ◽  
...  

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