材料科学
能量收集
纳米发生器
压电
锆钛酸铅
碲化铋
光电子学
纳米技术
热电材料
纳米线
热电性
摩擦电效应
储能
氮化镓
发电
电压
热电发电机
工程物理
热电效应
驻极体
电气工程
陶瓷
机械能
能量转换
电池(电)
功率密度
电介质
作者
Chandrmani Yadav,Brihaspati Singh,Ankur Saxena,KAMLESH PASWAN,Akhilesh Singh,Asmita Mishra
标识
DOI:10.1002/ente.202501814
摘要
Nanogenerators harness energy from ambient mechanical, thermal, or frictional energy for portable and self‐powered devices. Piezoelectric nanogenerators (PENGs) utilize zinc oxide (ZnO) nanowires and lead zirconate titanate (PZT) to convert vibrations, demonstrating voltages of up to 66 V and power densities of up to 170 µW/cm 2 , particularly with magnesium‐doped gallium nitride (GaN:Mg) and zinc oxide coaxial structures or configurations. Li‐doping allowed 5 times the current output. Triboelectric nanogenerators (TENGs) utilize contact electrification, achieving maximum power densities of 5.55 W/m 2 in MXene‐based systems or 34.26 W/m 3 from oscillating ocean waves. Pyroelectric nanogenerators (PyNGs) utilize temperature fluctuations to generate approximately 1.8 V from low‐frequency acoustic waves in polyvinylidene fluoride (PVDF). Thermoelectric generators (TEGs) using a Bismuth telluride/Antimony telluride (Bi 2 Te 3 /Sb 2 Te 3 ) film will generate 193 µW at a 50 K Δ T , or 71.8 µW/cm 2 in the airflow, powering a battery‐free Electrocardiogram (ECG) monitor. The materials of importance are Bi 2 Te 3 (ZT = 1), ZnO, MXenes, and lead telluride (PbTe). Nanogenerators will have applications ranging from wearables (generating 120 mV from body heat) to biomedical implants, smart tires (for a total of approximately 1.79 mW), and ocean buoys. Major challenges with nanogenerators are low output, durability, and scalability when developing into commercial products. Hybridization and nanostructuring methodologies will enhance commercialization for nanogenerators.
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