波音游戏-波音娱乐城赌球打不开

Saturday, June 14, 2025
NewsTechnology

Self-assembled monolayer paves the way for adapting perovskite solar cells for renewable energy

A step forward in the evolution of perovskite solar cells recorded by researchers at City University of Hong Kong (CityU) will have significant implications for renewable energy development.

The CityU innovation paves the way for commercializing perovskite solar cells, bringing us closer to an energy-efficient future powered by sustainable sources. The research, titled “Stabilized hole-selective layer for high-performance inverted p-i-n perovskite solar cells,” is published in the journal Science.

“The implications of this research are far-reaching, and its potential applications could revolutionize the solar energy industry,” said Professor Zhu Zonglong of the Department of Chemistry at CityU, who collaborated with Professor Li Zhong’an at Huazhong University of Science and Technology.

New approach

Perovskite solar cells are a promising frontier in the solar energy landscape, known for their impressive power conversion efficiency. However, they have one significant drawback: thermal instability, i.e. they don’t tend to perform well when exposed to high temperatures.

The team at CityU has engineered a unique type of self-assembled monolayer, or SAM for short, and anchored it on a nickel oxide surface as a charge extraction layer.

“Our approach has dramatically enhanced the thermal robustness of the cells,” said Professor Zhu, adding that thermal stability is a significant barrier to the commercial deployment of perovskite solar cells.

“By introducing a thermally robust charge extraction layer, our improved cells retain over 90% of their efficiency, boasting an impressive efficiency rate of 25.6%, even after operated under high temperatures, around (65℃) for over 1,000 hours. This is a milestone achievement,” said Professor Zhu.

Raising the heat shield

The motivation for this research was born from a specific challenge in the solar energy sector: the thermal instability of perovskite solar cells.

“Despite their high power conversion efficiency, these solar cells are like a sports car that runs exceptionally well in cool weather but tends to overheat and underperform on a hot day. This was a significant roadblock preventing their widespread use,” said Professor Zhu.

The CityU team has focused on the self-assembled monolayer (SAM), an essential part of these cells, and envisioned it as a heat-sensitive shield that needed reinforcement.

“We discovered that high-temperature exposure can cause the chemical bonds within SAM molecules to fracture, negatively impacting device performance. So our solution was akin to adding a heat-resistant armor—a layer of nickel oxide nanoparticles, topped by a SAM, achieved through an integration of various experimental approaches and theoretical calculations,” Professor Zhu said.

To counteract this issue, the CityU team introduced an innovative solution: anchoring the SAM onto an inherently stable nickel oxide surface, thereby enhancing the SAM’s binding energy on the substrate. Also, they synthesized a new SAM molecule of their own, creating an innovative molecule that promotes more efficient charge extraction in perovskite devices.

Better efficiency in higher temperatures

The primary outcome of the research is the potential transformation of the solar energy landscape. By improving the thermal stability of perovskite solar cells through the innovatively designed SAMs, the team has laid the foundation for these cells to perform efficiently even in high-temperature conditions.

“This breakthrough is pivotal as it addresses a major obstacle that previously impeded wider adoption of perovskite solar cells. Our findings could significantly broaden the utilization of these cells, pushing their application boundaries to environments and climates where high temperatures were a deterrent,” said Professor Zhu.

The importance of these findings cannot be overstated. By bolstering the commercial viability of perovskite solar cells, CityU is not merely introducing a new player in the renewable energy market, it’s setting the stage for a potential game-changer that could play a vital role in the global shift towards sustainable and energy-efficient sources.

“This technology, once fully commercialized, could help decrease our dependence on fossil fuels and contribute substantially to combating the global climate crisis,” Zhu added.

百家乐官网所有技巧| 高手百家乐官网赢钱法| 大发888特惠代码| 乌兰浩特市| 百家乐庄闲和各是多少| 大发888缺少 casino| 百家乐官网楼梯缆| 德州扑克秘籍| 百家乐正反投注| 百家乐官网群柏拉图软件| 黄金城百家乐苹果版| 云顶平台| 百家乐tt娱乐平台| ag百家乐官网下载| 最好的网上真人赌博| 巴西百家乐的玩法技巧和规则| 百家乐官网真人游戏娱乐| 皇冠现金网娱乐城| 福布斯百家乐的玩法技巧和规则| 破战百家乐官网的玩法技巧和规则| 皇冠赌球网| 百家乐玩法官网| 杨公风水24山分金水法| 网上百家乐官网合法吗| 大发888娱乐城建账号| 百家乐免費游戏| 新平| 大发888玩哪个| 百家乐路珠价格| 乐宝百家乐游戏| 百家乐官网网址多少| 大发888官方体育| 菲律宾百家乐赌场娱乐网规则| 百家乐算牌皇冠网| 百家乐官网游戏唯一官网站| 皇冠透注网| 大发888赌博网站| CEO百家乐的玩法技巧和规则 | 大发888注册bet| 网上百家乐解密| 百家乐平投注法|