Oh Jeonghyeon, Wee Avis Sin Hui, Park Eun-Byeol, Hwang Jaejin, Kim Seon Je, Jeong Hu Young, Khine Myat Thet, Pujar Pavan, Lee Jaekwang, Kim Young-Min, Kim Sunkook
Multifunctional Nano Bio Electronics Lab, School of Advanced Materials Science and Engineering, Sungkyunkwan University, Suwon, Gyeonggi-do, 16419, Republic of Korea.
Department of Energy Science, Sungkyunkwan University (SKKU), Suwon, Gyeonggi-do, 16419, Republic of Korea.
Adv Sci (Weinh). 2025 Apr;12(15):e2408687. doi: 10.1002/advs.202408687. Epub 2025 Feb 24.
Engineered defect chemistry in ultrathin (≈5 nm) hafnia through substitutional cobalt (HCO) is investigated for selective glucose sensing. Thin films of HCO, grown using chemical solution deposition (CSD)-traditionally used to grow thick films-on silicon, show significant glucose sensing activity and undergo monoclinic to orthorhombic phase transformation. The presence of multivalent cobalt in hafnia, with oxygen vacancies in proximity, selectively oxidizes glucose with minimal interference from ascorbic acid, dopamine, and uric acid. Theoretical investigations reveal that these oxygen vacancies create a shallow donor level that significantly enhances electrocatalytic activity by promoting charge transfer to the conduction band. This results in considerable selectivity, repeatability, and reproducibility in sensing characteristics. These findings highlight the technological importance of using CSD for thin films, paving the way for ultrathin CSD-processed HCOs as potential candidates for selective glucose sensing applications.
通过取代钴(HCO)对超薄(约5纳米)氧化铪中的工程缺陷化学进行了研究,用于选择性葡萄糖传感。使用化学溶液沉积(CSD)——传统上用于生长厚膜——在硅上生长的HCO薄膜,显示出显著的葡萄糖传感活性,并经历单斜相到正交相的转变。氧化铪中多价钴的存在以及附近的氧空位,能选择性地氧化葡萄糖,同时受抗坏血酸、多巴胺和尿酸的干扰最小。理论研究表明,这些氧空位产生了一个浅施主能级,通过促进电荷转移到导带,显著增强了电催化活性。这导致传感特性具有相当高的选择性、重复性和再现性。这些发现突出了使用CSD制备薄膜的技术重要性,为超薄CSD处理的HCO作为选择性葡萄糖传感应用的潜在候选材料铺平了道路。