Department of Chemistry, University of Liverpool, Crown Street, Liverpool, L69 7ZD, UK.
Leverhulme Research Centre for Functional Materials Design, Materials Innovation Factory and Department of Chemistry, University of Liverpool, Liverpool, L7 3NY, UK.
Nat Commun. 2022 Aug 16;13(1):4824. doi: 10.1038/s41467-022-32344-7.
Inverse vulcanization, a sustainable platform, can transform sulfur, an industrial by-product, into polymers with broad promising applications such as heavy metal capture, electrochemistry and antimicrobials. However, the process usually requires high temperatures (≥159 °C), and the crosslinkers needed to stabilize the sulfur are therefore limited to high-boiling-point monomers only. Here, we report an alternative route for inverse vulcanization-mechanochemical synthesis, with advantages of mild conditions (room temperature), short reaction time (3 h), high atom economy, less HS, and broader monomer range. Successful generation of polymers using crosslinkers ranging from aromatic, aliphatic to volatile, including renewable monomers, demonstrates this method is powerful and versatile. Compared with thermal synthesis, the mechanochemically synthesized products show enhanced mercury capture. The resulting polymers show thermal and light induced recycling. The speed, ease, versatility, safety, and green nature of this process offers a more potential future for inverse vulcanization, and enables further unexpected discoveries.
反硫化是一种可持续的平台,可以将工业副产品硫磺转化为具有广泛应用前景的聚合物,如重金属捕集、电化学和抗菌剂。然而,该过程通常需要高温(≥159°C),因此稳定硫磺所需的交联剂仅限于高沸点单体。在这里,我们报告了一种替代的反硫化方法——机械化学合成,具有条件温和(室温)、反应时间短(3 小时)、高原子经济性、较少的 HS 和更广泛的单体范围的优点。成功地使用从芳香族、脂肪族到挥发性的交联剂(包括可再生单体)生成聚合物,证明了这种方法具有强大的通用性。与热合成相比,机械化学合成的产物显示出增强的汞捕集能力。所得聚合物具有热和光诱导的循环性能。该过程的速度、易用性、通用性、安全性和绿色性质为反硫化提供了更有潜力的未来,并能够带来更多意想不到的发现。