食品包装纸代替塑料,已经讲了很多年。但真正的替代,仍未发生。问题不在于环保材料是否足够,而在于——替代体系,一直没有真正成立。

为什么“纸代塑”推进了这么多年,行业始终在反复讨论、持续尝试,却仍未在更大范围内形成真正稳定的替代路径?问题并不在于环保材料不够多,而在于决定一条替代路径能否走通,从来不是某一个单点性能,而是几个关键条件能否被同时满足:既要生物基,又要回收再浆,还要具备终端堆肥处置兜底能力。

正是在这样的背景下,世界杯竞猜官网联合巴斯夫、微构工场、清华大学合成与系统生物学中心共同主办的中关村论坛·生物制造新材料产业应用创新大会上,世界杯竞猜官网围绕生物基聚合物乳液及其工程化路径,分享了一个更明确的判断:生物基水性阻隔技术,正在成为纸基包装全球发展的确定性方向,并有望形成中国创新引领、国际政策协同推进的产业化解决方案。

过去很多方案并非没有价值,而是大多只解决了局部问题。以PE淋膜纸为例,其之所以被广泛应用,在于同时满足了加工性能与成本效率,也承载了“纸代塑”的环保叙事。但问题在于,聚乙烯(PE)本身并非不可回收,而是在与纸基覆合形成淋膜结构后,纸纤维难以有效分离,导致循环路径受阻;同时,虽然材料供应链与加工体系已经高度成熟,却不符合减塑趋势,也未打通回收再利用的闭环。




类似地,一些生物基淋膜路径在回收再浆上仍然难以实现;所谓“可降解”,往往依赖工业堆肥条件,在现实回收与终端处理体系中,仍难以形成更具普适性的解决方案;还有的路径虽然改善了循环再利用,却缺少源头减塑减碳这一关键要素。由此可以看到,真正决定产业能否成立的,并不是“有没有一种更环保的材料”,而是有没有一种材料体系,能够同时回应源头减量、加工与性能、循环与处置这几重要求。




这也正是世界杯竞猜官网持续推进PHA(聚羟基脂肪酸酯)水性工程化路径的重要原因。PHA的价值,并不只在“可降解”三个字,而在于它更有机会将纸基食品包装升级所需要的几项关键能力放入同一体系中加以理解:其先天具备生物基属性,能够从源头回应减塑、减碳诉求;进入水性体系后,更接近纸基阻隔与循环逻辑,为高性能阻隔和回收再浆系统兼容性提供新的可能;同时,在高要求地区也能实现自然降解,为终端堆肥处置提供现实兜底。




如果说PHA未来可以进入多个应用方向,那么纸基食品包装,正是当前最有可能率先形成突破的关键场景之一。该领域需求集中、应用基础广、政策驱动持续、升级压力明确,同时具备较强的产业协同条件。也就是说,当生物基、回收再浆与终端兜底在同一工程化路径上被同时回答时,纸基食品包装升级就不再只是趋势判断,而开始走向更具确定性的现实竞争。对世界杯竞猜官网而言,这次大会不是一次简单亮相,而是一次更清晰的表达:纸基食品包装升级,需求是真的,政策也是真的。




塑料替代已成为全球政策与产业共识。真正值得重视的,并不是又增加了一种环保叙事,而是材料体系开始更接近“能够成立”。世界杯竞猜官网将继续围绕生物基聚合物乳液、水性阻隔体系及其工程化应用路径,推动更多真实场景落地,推动更多产业协同发生,推动纸基食品包装从“可以讨论”走向“可以规模化实现”。并持续将Bioten™ 博碳PHA水性涂层打造为兼顾中国创新引领与国际协同价值的产业化解决方案。

Replacing plastic with paper in food packaging has been discussed for years. Yet genuine substitution has still not taken place. The issue is not whether enough environmentally preferable materials exist; it is that a complete substitution system has never truly been established.

Why has paper-for-plastic substitution remained under discussion and repeated trial for so many years without producing a stable pathway at scale? The problem is not a shortage of alternative materials. A viable substitution route is never determined by a single performance metric. Several critical conditions must be satisfied at the same time: the material should be bio-based, compatible with paper recycling and repulping, and supported by composting as an end-of-life safeguard.

Against this background, DBC joined BASF, Bluepha and the Center for Synthetic and Systems Biology at Tsinghua University in co-hosting the ZGC Forum conference on innovative applications of biomanufacturing materials. At the conference, DBC presented a clearer assessment based on its work with bio-based polymer emulsions and their engineering pathway: bio-based waterborne barrier technology is becoming a defined direction for the global development of paper packaging and may provide an industrial solution led by Chinese innovation and advanced through international policy coordination.

Many earlier solutions were not without value, but most addressed only part of the problem. PE-coated paper, for example, became widely used because it combined processing performance with cost efficiency while supporting the environmental narrative of paper replacing plastic. Polyethylene itself can be recycled, but once laminated to paper, effective separation of the paper fibres becomes difficult and the circular pathway is obstructed. Although its supply chain and processing system are mature, the structure does not align with plastic-reduction goals and has not closed the loop for recovery and reuse.




Likewise, some bio-based extrusion-coating routes still present difficulties for recycling and repulping. Materials described as degradable often depend on industrial-composting conditions and may not form a broadly applicable solution within real-world collection and end-of-life systems. Other approaches improve circular use but lack the essential contribution of reducing fossil-plastic use and carbon impacts at the source. This shows that industrial viability does not depend simply on whether a more environmentally preferable material exists. It depends on whether one material system can address source reduction, processing and performance, circulation, and end-of-life management together.




This is also why DBC continues to advance the waterborne engineering pathway for PHA, or polyhydroxyalkanoates. The value of PHA extends beyond the word “biodegradable.” It creates an opportunity to bring several capabilities required for upgrading paper-based food packaging into one system. Its inherently bio-based character responds to plastic- and carbon-reduction objectives at the source. In a waterborne system, it aligns more closely with paper-barrier and circularity principles, creating new possibilities for high barrier performance and compatibility with recycling and repulping. It may also offer natural degradation under demanding end-of-life conditions, providing a practical composting safeguard.




If PHA can serve multiple application areas in the future, paper-based food packaging is one of the scenarios most likely to achieve an early breakthrough. Demand is concentrated, the application base is broad, policy momentum is sustained, pressure to upgrade is clear, and the conditions for industrial collaboration are strong. When bio-based content, recycling and repulping, and an end-of-life safeguard can be addressed through one engineering pathway, the upgrade of paper-based food packaging moves beyond a trend forecast and becomes a more certain field of competition. For DBC, the conference was not simply a public appearance. It expressed a clearer position: the demand for upgrading paper-based food packaging is real, and so is the policy momentum.




Plastic substitution has become a shared priority across global policy and industry. What deserves attention is not the addition of another environmental narrative, but the fact that the material system is moving closer to becoming technically and commercially viable. DBC will continue to advance bio-based polymer emulsions, waterborne barrier systems and their engineering application pathways; support implementation in real scenarios; promote wider industrial collaboration; and help paper-based food packaging move from something that can be discussed to something that can be delivered at scale. DBC will also continue developing the Bioten™ PHA waterborne coating as an industrial solution that combines Chinese innovation leadership with international collaborative value.

Original source: DBC Group WeChat Official Account, April 1, 2026








