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Ketergantungan Kita pada Minyak Bumi Bisa Berkurang Tidak Hanya Melalui Mobil Listrik, tetapi Juga Plastik Berkelanjutan

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Menggunakan Tanaman untuk Memproduksi Plastik Berkelanjutan

When we think of oil, we think primarily of fuel for cars, ships, and planes. Namun petrokimia, yang sebagian besar berupa plastik atau komponen untuk memproduksi plastik, mewakili 12% dari permintaan minyak global.

While oil consumption is often viewed as a pollutant due to carbon emissions, mikroplastik are a growing concern as well. Plastic production from oil contributes to emitting both carbon and microplastics.

Jadi, kabar baik bahwa lebih banyak material plastik berkelanjutan kini muncul di cakrawala.

Peneliti dari Ecole Polytechnique Federale de Lausanne (EPFL) Swiss, University of Applied Sciences and Arts of Western Switzerland, dan University of Manchester, telah mengembangkan sumber plastik berkelanjutan dari limbah pertanian.

More precisely, they created sustainable polyamides using a sugar core derived from agricultural waste.

Mengapa Poliamida?

Many plastic products, like nylons, a subclass of polyamides, need to be very durable. For this, they rely on a specific chemical structure called an aromatic group.

These aromatic groups give plastic hardness, strength, and high-temperature resistance. However, they are also often what make plastics non-biodegradable and toxic to the environment.

Poliamida yang menggunakan gula organik alih-alih senyawa aromatik akan jauh lebih tidak beracun. Penggunaan gula tersebut oleh poliamida EPFL, yang berasal dari limbah pertanian, semakin meningkatkan aspek keberlanjutan penemuan mereka.

Jenis Plastik Baru

They developed a catalyst-free process to convert dimethyl glyoxylate xylose, a stabilized sugar made directly from biomass such as wood or corn cobs, into high-quality polyamides. The process relies on a series of steps, starting with the material being warmed at 140°C and then 250–260 °C.

Sumber: Nature.com

The process was also remarkably efficient, with a 97% atom efficiency, meaning that almost all the initial material was converted into polyamides.

The resulting material was tested to check its chemical and physical properties.

It proved to be as much, if not more, resistant to heat than traditional fossil fuel-based polyamides. It also performed well in durability and mechanical resistance (tensile strength).

Sumber: Nature.com

Salah satu keterbatasan yang ditemukan peneliti adalah bahwa material ini mungkin sensitif terhadap paparan air dalam jumlah besar, sehingga tidak dapat direndam. Material ini juga mungkin terlalu permeabel terhadap oksigen dan air untuk digunakan dalam kemasan makanan tipis. Namun, masih banyak aplikasi potensial yang tersedia.

Plastik Berkelanjutan Siap untuk Penggunaan Industri

Kegunaan

Another factor to take into account for industrial applications is “processability.” Or the ease of turning the raw plastic base components into useful materials.

The researchers demonstrated that their new material can be used for piston injection molding and high-shear twin-screw extrusion, which are both common methods for shaping plastics.

Sumber: EPFL

They even tested its properties for 3D printing, using high-temperature settings to produce an iPhone 11 case successfully.

Sumber: EPFL

Daur Ulang

Another test was to check the potential for recycling of the new polyamide material. They re-used the plastic through high-shear twin-screw extrusion 3 times.

The tensile properties remained nearly identical across the three cycles.

The coloration increased slightly at each cycle. However, if needed, the orange color can be avoided entirely by tweaking the production process (improved purification of diamines), so this would not be a major issue.

Overall, mechanical recycling showed good performance, which was equal or superior to existing plastic supplies.

Finally, they also investigated the possibility of chemical recycling as an end-of-life option for plastic. This relied heavily on powerful acids like sulfuric acid but demonstrated that it could be fully recycled with chemicals at the end.

Alternatif yang Kompetitif Secara Biaya

For the industry to adopt such sustainable plastic (without regulation changes), it will need to be cost-competitive against established fossil fuel-based chemicals.

The price of nylon 66, the most common polyamide, is usually between $3,000-7,000/ton. The prices of the new material would be in a similar range, even when assuming relatively high costs for the source material.

Potentially, using materials from cheaper sources like corn cobs could make it even cheaper.

Sumber: Nature.com

In addition to being price competitive, the new material is a much smaller emitter of carbon and greenhouse gases than the existing products on the market, especially if using xylose from corn cobs instead of commercial xylose.

Plastik Berkelanjutan – Kemajuan yang Diperlukan

New types of bio-plastics, as in this study, are needed to reduce the consumption of fossil fuels.

This represents a new step, where a new type of plastic molecules with similar or superior performances are created instead of trying to recreate traditional plastic chemicals with a biomaterial source.

Most likely, replacing aromatic groups from fossil fuels with biological sugars is just the beginning.

Pendekatan ini lebih sulit tetapi juga memungkinkan pasokan plastik baru yang menunjukkan banyak keunggulan dibandingkan yang tradisional:

  • Jejak karbon yang lebih rendah.
  • Polusi yang lebih sedikit.
  • Pemanfaatan limbah pertanian.
  • Potensi penurunan biaya atau peningkatan sifat kimia.

The success of the EPFL team (and its research partners) should be used as a template for other innovations in using biomaterials to create new useful industrial chemicals instead of just trying to replicate exactly the existing plastics using chemical structures abundant in oil.

Jonathan adalah mantan peneliti biokimia yang bekerja dalam analisis genetik dan uji klinis. Ia kini menjadi analis saham dan penulis keuangan dengan fokus pada inovasi, siklus pasar, dan geopolitik dalam publikasinya 'The Eurasian Century'.