"这片镜片怎么一开机就发雾?"——COP副牌的水,比你想的深

产品中心 发布时间: 2026-09-15 3773 阅读

Optics, you've most likely heard this conversation in the workshop.

Procurement asks: Why does the edge of the injection-molded light guide plate fog up with this newly arrived transparent material, and the customer wants to return it?

Engineer squatted by the machine and looked for a long time: Did you buy COP or COC? Does the grade match?

Procurement checks the order of goods: Everyone says it's 'Japanese transparent optical material,' 80,000 yuan cheaper per ton than the genuine brand.

Engineer shakes his head: If the problem isn't there, it's not cheap. You don't even know which process line you bought from.

In this conversation, there's a big pitfall in the COP category: it looks similar to COC, both are transparent, and both are made as optical components, but their process routes and secondary product float indicators differ. Mixing them is just setting a trap for yourself. Today, I'll take COP out and explain it thoroughly.

COP and COC are not the same thing.

Many people mix COC and COP together, but actually they're just one process difference.

COC is made by copolymerizing ethylene with cyclic monomers. COP is made by first opening the ring polymer, then adding hydrogen to reduce it. Both routes ultimately result in highly transparent, low-birefringence amorphous plastics, but the molecular chain details are different.

COP's strength lies in optics. Its birefringence index is especially low, light is uniform, and it's even more convenient for making plastic lenses for camera lenses, mobile phone lenses, and light guide plates for display backlight modules—even more convenient than COC. It's also gamma- and chemical-resistant, and is used in medical optical components.

But COP is even more niche than COC. Globally, only a few companies can stably mass-produce high-end COP.

Globally, COP-making is dominated by Ruion .

Ranked by capacity and high-end optical share, the global COP supply is even more concentrated than COC. The following three are the main suppliers you can't ignore.

First, Zeon Corporation. Japan's Zeon Corporation is the world's earliest manufacturer to industrialize COP, with brands Zeonex and Zeonor. Its annual capacity is about 40,000 tons, with further increases after expansion, accounting for nearly half of global COP capacity and a higher share in high-end optics. Zeonex takes an open-loop polymer-and-hydrogen route, Zeonex focuses on high-transparency, low-birefringence optical grade, and Zeonor focuses on injection-molded grade resistant to moisture and heat. Mobile phone lenses, automotive lenses, and micro prisms all bear the influence of Ruion. Saying COP can't avoid Ruion, and that's no exaggeration.

The second company, JSR (Japanese synthetic rubber). JSR's Arton series was mentioned in the previous COC article. It also uses an open-loop polymerization approach and holds a place in the COP camp. Arton's features are heat and chemical resistance, which is stronger than Ruion, differentiated in coatings for optical films and semiconductor-related transparent parts. Its capacity is not large, about 5,000 tons per year, but it is highly recognizable among high-end film materials.

The third company, Mitsui Chemicals. Mitsui's APEL series, although mainly COC routes, also has copolymer grades covering optical applications. In the COP segment, Mitsui occupies the third tier thanks to its complete range of grades and stable supply. For optical components seeking multi-source backup, Mitsui is often the one to be pulled in.

This category is concentrated like this: Ruiweng's family pushed downward, JSR and Mitsui filled the gap.

Secondary Brand Knowledge: Where do COP secondary plates float

COP The principle behind secondary plates is the same as other materials: same manufacturer and same grade aggregated together, and if some factory inspection indicators don't hit the lower edge of the genuine brand, it's the secondary brand. The four main sources are the starting and parking front and tail materials, grade switching transition materials, batches with slight drift in melt finger/translucency/birefringence during normal production, and auxiliary line tailings. They are still original factory particles, with molecular chains from the same origin as genuine brands, not recycled pellets.

But COP secondary cards have a special feature: the indicators they float on are often exactly the few things optical components are very sensitive to—light transmittance, birefringence, phase difference in thickness direction. So whether a COP secondary brand can be used depends on whether your part is sensitive to these factors.

For high-resolution lenses and AR glasses light wave guides, these have zero tolerance for birefringence, avoid secondary cards. For non-primary light areas of light guide plates, optical shields, and transparent border parts for displays, as long as the indicators are within control, the secondary brand can be used.

The boundary is still the same: all genuine brands meet standards, batch quality is stable; Secondary cards have slight fluctuations in some indicators, same base material; Reclaimed material is scrap material re-granulated and subjected to secondary heat history; Recycled material is recycled waste and has high fluctuations. Don't use the latter two as COP secondary cards.

Zeonex's secondary brand, how to connect optical components ?

Zeonex/Zeonor's secondary cards mainly focus on birefringence and light transmittance.

for light guide plates, the main light entry area must be genuine, the secondary light area and frame should be used, and the short optical path positions should have double refraction barely noticeable. For optical shields and transparent windows on instrument panels, secondary brands are sufficient. Ruiyong's secondary brand mainly comes in large packaging, entering the optical product factory's silos. The granules are hard to tell from the genuine brand, so check the original packaging label.

JSR Arton's secondary brand is small in quantity and expensive

Arton with limited production capacity, limited secondary brand outflow, and tight supply on the market. Its secondary brand is mostly used for non-critical layers of optical films or for the internal structure of display components. When encountering Arton secondary brands, first confirm the grade and drift indicators; don't use them for lens-grade applications.

Mitsui APEL's secondary brand, very suitable as backup material

Mitsui APEL secondary brand, melt finger and heat resistance may fluctuate slightly. It's suitable as a backup supply source for optical components—main supply uses genuine Ruiong brand, auxiliary auxiliary lines use Mitsui, non-critical parts are diverted out to reduce costs. Replace APEL secondary brand without major recipe changes; just test sensitive indicators and it's ready to use.

Secondary brand selection pitfalls: Three things to do for optical components

First, distinguish between COC and COP. Do not mix materials for two process lines; using COC for light guide plates may cause optical path errors. Before manufacturing, confirm the process behind the grade.

Second, test birefringence and light transmission first. When sub-brands of optical components arrive at the factory, these two items must be sampled and tested; phase differences are measured by instrument cards, not by eye.

Third, large and small packages are sold in batches. Use small packages for prototyping, and large packages for mass production to dilute costs. Don't lose out on specifications.

Cologne warehouse in-stock | COP moisture-proof

Main recommended brands: Zeon (Japan), JSR, Mitsui Chemicals (Japan )

Main grades: Zeonex/Zeonor, Arton, APEL

Packaging specifications: original factory packaging, available in large and small packaging; Small sub-brand, boxed sub-brand, large package/ton material stacked by tier, stocked by batch

Warehouse Stock: COP sub-brand warehouse stock around 4000 tons

Spot details: Small packet sub-brand stock 600-900 tons, containerized sub-brand stock 250-450 tons, large package/ton packaging material ready 2650-3150 tons

Supply Guarantee: inspection orders come with the goods, factory test forms are randomly processed, and upon arrival, you can check the documents

Selection tips and a real case

Genuine COP is so expensive that a light guide plate is too expensive to quote, COP returns are foggy like frosted glass, and large sub-brand COP just steps on the birefringence threshold.

When selecting COP secondary brands, remember these five points: First, check whether the piece is sensitive to birefringence; second, distinguish between COC and COP; third, check for light transmission and phase difference; fourth, select packaging size and packaging by batch; fifth, keep samples for each batch

Here's a case. There is a factory in Fushun that makes automotive optical components. They used to make instrument panel light guides, always using the genuine Zeonor from Reon. One ton of material cost over three hundred thousand RMB, and the material cost per light guide could not be reduced. They tried using a batch of cheaper transparent material, but the result was uneven light transmission and hazy edges. The customer rejected the entire batch, causing a significant loss. Later, we provided them with a parallel brand of the same Reon grade. The birefringence was within the controlled range, and the light transmittance difference was only a few tenths of a percent. The main light area continued to use the genuine brand, while the secondary light area and edges used the parallel brand. After the adjustment, the material cost of this part dropped significantly, the uniformity of light transmission passed customer acceptance, and the batch yield stabilized at 96%.

This is the use of COP parallel brands—not a complete replacement, but diverting areas that are not sensitive to specifications. Ningbo Kolon New Materials Co., Ltd. has been producing imported parallel brands for many years. For high optical transparency materials like COP and COC, similar diversion ratios are adjusted annually. In simple terms, this helps you calculate the cost of lenses and light guides clearly before mass production.

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