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  • Wiley  (6)
  • Zheng, Yifan  (6)
  • English  (6)
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  • Wiley  (6)
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  • English  (6)
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  • 1
    In: physica status solidi (a), Wiley, Vol. 219, No. 24 ( 2022-12)
    Abstract: Laser power converters (LPCs) used in wireless energy transmission can realize noncontact power supply under extreme conditions and provide continuous energy support to unmanned probes, which is believed to play an essential role in the exploration of deep ocean. However, commercially available LPCs usually employ III–V semiconductors as light absorbers due to their industrial maturity. In order to match the underwater 450∼540 nm laser source, it requires an epitaxial growth method to tune the bandgap of those materials, which is highly costly that severely restricts the industrial preparation of LPCs on a large scale. Herein, the potential of perovskite in the application of underwater LPCs is presented theoretically by constructing MAPbBr 3 LPC and its theoretical power conversion efficiency (PCE) of 48.55% is demonstrated. Moreover, a microcavity (MC) constructing strategy to further improve the device performance is proposed, in which the transfer matrix method and an admittance‐based antireflection condition approach are combined for the optical simulation. By modulating the MC condition, the significant optical resonance inside the device while avoiding the obvious light reflection is realized. As a result, MC LPCs can obtain a simulated PCE of 64.27%, which is highly competitive with the existing UV–vis LPCs.
    Type of Medium: Online Resource
    ISSN: 1862-6300 , 1862-6319
    URL: Issue
    Language: English
    Publisher: Wiley
    Publication Date: 2022
    detail.hit.zdb_id: 1481091-8
    detail.hit.zdb_id: 208850-2
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  • 2
    In: physica status solidi (a), Wiley, Vol. 219, No. 24 ( 2022-12)
    Type of Medium: Online Resource
    ISSN: 1862-6300 , 1862-6319
    URL: Issue
    Language: English
    Publisher: Wiley
    Publication Date: 2022
    detail.hit.zdb_id: 1481091-8
    detail.hit.zdb_id: 208850-2
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  • 3
    In: Advanced Functional Materials, Wiley, Vol. 33, No. 40 ( 2023-10)
    Abstract: Underwater solar cells (UWSCs) provide an ideal alternative to the energy supply for long‐endurance autonomous underwater vehicles. However, different from conventional solar cells situated on land or above water, UWSCs give preference to use wide bandgap semiconductors (≥1.8 eV) as light absorber to match underwater solar spectra. Among wide bandgap semiconductors, FAPbBr 3 perovskite is under prime consideration owing to its matching optical bandgap (≈2.3 eV), outstanding photoelectric properties, easier processability, etc. Unfortunately, for FAPbBr 3 solar cells, substantial interface defects greatly limit the charge carrier extraction efficiency, thus limiting the device performance, especially in underwater low‐light environments. This study employs a molecular self‐assembly strategy to effectively eliminate the interfacial defects. As a result, a great improvement in power conversion efficiency (PCE) from 6.44% to 7.49% is obtained, which is among the best efficiency reported for inverted FAPbBr 3 solar cells up to date. Besides, a champion PCE of 30% is obtained under 520 nm monochromatic light irradiation (4.8 mW cm −2 ). These results demonstrate that FAPbBr 3 solar cells present a tremendously promising application in UWSCs.
    Type of Medium: Online Resource
    ISSN: 1616-301X , 1616-3028
    URL: Issue
    Language: English
    Publisher: Wiley
    Publication Date: 2023
    detail.hit.zdb_id: 2029061-5
    detail.hit.zdb_id: 2039420-2
    SSG: 11
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  • 4
    In: Orthopaedic Surgery, Wiley, Vol. 15, No. 9 ( 2023-09), p. 2383-2392
    Abstract: The application of three‐dimensional (3D) printing technology in the management of posterior wall acetabular fractures can greatly reduce surgical invasiveness and operative time and simplify the procedure of reconstruction plate contouring, but the cost and time of patient‐specific plate preparation on the basis of traditional 3D‐printed pelvis model should not be neglected. We described a new method for patient‐specific plate preparation by using 3D‐printed plate template. The study aimed to assess the effectiveness and feasibility of the 3D‐printed plate template in patient‐specific plate preparation for posterior wall acetabular fractures. Methods A total of 65 cases of posterior wall acetabular fractures with surgical treatment from December 2012 to December 2020 were chosen. According to the different plate contouring methods, the 65 cases were divided into three groups, which were group A (21 cases), group B (20 cases), and group C (24 cases). In group A, the 3D‐printed plate template was used to contour the patient‐specific reconstruction plate before surgery, whereas the 3D‐printed hemipelvis model was adopted for group B. In group C, the reconstruction plate was contoured intraoperatively. Among the three groups, the instrumentation time, surgical time, blood loss, patient‐specific plate preparation time, complications, reduction quality, and hip function were compared. The Kruskal–Wallis test was used to analyze the reduction quality and hip function among three groups. Results In comparison with group C, patients in groups A and B were featured by obviously shorter instrumentation time (−22, −23 min), shorter surgical time (−46, −44 min), and less intraoperative blood loss (−110, −122 mL). Compared to the hemipelvis model in group B (2.29 ± 0.56 vs. 12.70 ± 3.79 days), the 3D printing time for plate templates in group A was significantly shorter. The reduction quality and hip function had no obvious statistical difference among the three groups. The complication rate within group A (3/21) and group B (3/20) were both slightly lower than group C (5/24), with no obvious difference. Conclusions Both the patient‐specific pre‐contoured plate fixation methods based on the 3D‐printed hemipelvis model and plate template can achieve satisfactory clinical efficacy, with the advantage of shorter instrumentation and surgical time, and less intraoperative blood loss. However, 3D printing of plate template is easier and less time‐consuming, considering the shorter time and less cost for 3D printing of physical model.
    Type of Medium: Online Resource
    ISSN: 1757-7853 , 1757-7861
    URL: Issue
    Language: English
    Publisher: Wiley
    Publication Date: 2023
    detail.hit.zdb_id: 2483883-4
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  • 5
    In: Solar RRL, Wiley, Vol. 7, No. 19 ( 2023-10)
    Abstract: The achievement of high‐performance solar cell production hinges on the development of a reliable and effective approach for perovskite crystallization that is compatible with rapid and continuous processing on large substrates. Herein, a pressure‐assisted fast crystallization technique is presented that reduces the thermal annealing period to less than 2 min and achieves the impressive formation of micrometer‐sized vertical‐monolithic perovskite crystals. The pressure‐assisted technique provides confined space and pressure, where the confined space hinders the volatilization of residual solvents and enhances the Ostwald ripening effect. The presence of pressure provides internal energy for crystal growth, while the presence of solvent molecules accelerates solute diffusion. These factors collectively contribute to the rapid growth of grains. Results demonstrate that this pressure‐assisted fast crystallization strategy significantly enhances the power conversion efficiency (PCE) of both n‐ i ‐p and p‐ i ‐n perovskite solar cells (PSCs), achieving PCEs of 22.80% and 24.69%, respectively. The improvement in PCE can be attributed to the reduced number of grain boundaries, minimized interfacial defects, and enhanced surface crystalline quality. Importantly, this approach is universal and highly reproducible for solution‐processed manufacturing methods. It is anticipated that this efficient, reliable, and reproducible technique will accelerate the commercialization of PSCs.
    Type of Medium: Online Resource
    ISSN: 2367-198X , 2367-198X
    URL: Issue
    Language: English
    Publisher: Wiley
    Publication Date: 2023
    detail.hit.zdb_id: 2882014-9
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  • 6
    In: Energy Technology, Wiley, Vol. 11, No. 7 ( 2023-07)
    Abstract: Wide‐bandgap perovskite solar cells (PSCs) are a promising technology with a series of potential applications, including tandem photovoltaics, solar‐driven electrochemical energetic devices, and outfit morphing power supply for underwater equipment. However, the energy‐level difference between the charge transport layer and perovskite may result in inefficient interfacial charge extraction, leading to the series carrier accumulation at the interface that impairs the photovoltaic performance. Herein, [6,6]‐phenyl C 61 butyric acid methyl ester is introduced between SnO 2 and FAPbBr 3 to alleviate the energy‐level mismatch. Significant photoluminescence quenches and decreased series resistance both verify the promoted interfacial charge extraction efficiency. Besides, the film on the flattened nonwetting electronic transport layers film has better quality, thus reducing defect density and nonradiative recombination. As a result, a 20% power conversion efficiency (PCE) improvement, from 7.02% to 8.55%, is achieved under AM1.5G illumination. More importantly, for the first time, this work demonstrates a highly efficient PSC with a PCE over 43% under the 532 nm laser condition, providing a promising wireless fast charging way with high‐power laser irradiation in deep ocean.
    Type of Medium: Online Resource
    ISSN: 2194-4288 , 2194-4296
    URL: Issue
    Language: English
    Publisher: Wiley
    Publication Date: 2023
    detail.hit.zdb_id: 2700412-0
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