Coated articles

A polypropylene-based coated article with optimized homopolymer and ethylene-propylene random copolymer layers addresses sealing and recyclability issues, offering improved sealing behavior and recyclability through a single-material design.

JP7840342B2Active Publication Date: 2026-04-03BOREALIS GMBH
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-11
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing polypropylene-coated articles face challenges in achieving exceptional sealing properties and are difficult to recycle due to the use of mixed materials, necessitating a single-material solution with improved sealing behavior and recyclability.

Method used

A coated article comprising a base material layer and two coating layers, where the second coating layer is made of a polypropylene homopolymer or ethylene-propylene random copolymer, optimized for melt flow rate, melting temperature, molecular weight distribution, and site defects, produced using a single-site catalyst system, ensuring a polypropylene-based single-material solution.

Benefits of technology

The solution enhances sealing properties with higher hot tack force and lower hot tack temperature, facilitating easier recycling by using a single-material composition.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a coated article comprising at least a substrate layer (SL), a first coating layer (CL1) and a second coating layer (CL2), CL2 having a melt flow rate MFR measured according to ISO 1133 in the range of 10 to 40 g / 10 min. 2 (230°C / 2.16 kg); melting temperature T measured by DSC according to ISO 11357 in the range of 149-162°C m and (A) a polypropylene homopolymer having a molecular weight distribution, MWD, determined by GPC, in the range of 2.4 to 4.5; and / or a melt flow rate, MFR, measured according to ISO 1133, in the range of 4 to 40 g / 10 min. 2 (230°C / 2.16 kg); melting temperature T measured by DSC according to ISO 11357 in the range of 115-145°C m and in the range of 0.01 to 1.2 mol % 13 The polypropylene composition includes (B) an ethylene propylene random copolymer having a number of 2,1 and 3,1 regio defects measured by C NMR, and SL and CL1 are polypropylene-based layers. Furthermore, the present invention relates to a method for producing a coated article and its use. Another aspect of the present invention relates to a method for recycling the coated article to obtain recycled polypropylene, and the use of the recycled polypropylene.
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Description

[Technical Field]

[0001] The present invention relates to polypropylene-based coated articles, a method for manufacturing said coated articles, and the use of said articles. [Background technology]

[0002] One common coating method is extrusion coating. Generally, extrusion coating of substrates such as paper, paperboard, fabrics, and metal foils with thin layers of plastic is carried out on a large scale. In the first step, the coating composition is extruded, causing the flux of the molten polymer material to pass through a flat die to produce a film with a thickness of several microns. In the second step, the coating process, the film is placed on a support and passed through a cooling cylinder. Upon cooling, the polymer adheres to the support. High-speed extrusion coating requires a relatively high melt flow rate (MFR2) of 10 g / 10 min or more.

[0003] Polypropylene compositions suitable for coatings, particularly extrusion coatings, are already known in the art.

[0004] EP2492293 A1 refers to polypropylene compositions suitable for extrusion coating or extrusion foaming of a wide range of substrates, having high melt strength and ductility, excellent processability, low gel content, and high temperature resistance, as well as methods for manufacturing such polypropylene compositions and extrusion coated or extrusion foamed articles.

[0005] EP3018154 A1 relates to a propylene homopolymer or copolymer having a comonomer selected from ethylene and C4-C20-alphaolefin in the copolymer, wherein the propylene homopolymer or copolymer does not contain phthalate compounds. It further relates to a long-chain branched propylene homopolymer or copolymer (b-PP) having a comonomer selected from ethylene and C4-C20-alphaolefin in the copolymer, wherein the long-chain branched propylene homopolymer or copolymer (b-PP) does not contain phthalate compounds.

[0006] WO2012 / 109449 A1 relates to a process for extruding a blend of an irradiated first propylene polymer and an unirradiated second propylene polymer, wherein the first propylene polymer contains a non-phenolic stabilizer. The irradiation of the first propylene polymer extruder is carried out in a low-oxygen environment, and the irradiated first propylene polymer and the unirradiated second propylene polymer are blended at a temperature below their respective melting points. The viscosity retention of the blend is 20-35%. [Prior art documents] [Patent Documents]

[0007] [Patent Document 1] European Patent Application Publication No. 2492293 [Patent Document 2] European Patent Application Publication No. 3018154 [Patent Document 3] International Publication No. 2012 / 109449 [Overview of the project] [Problems that the invention aims to solve]

[0008] Polypropylene-coated articles are widely used in packaging, with sterility and sealing properties being the primary requirements. However, there is still a need for coated articles with exceptionally good sealing behavior.

[0009] Therefore, one object of the present invention was to provide a new type of polypropylene having improved sealing properties such as higher hot tack force (= HTF) and lower hot tack temperature. Another problem is the recycling of coated articles after the first use. Recycling coated articles made of different materials such as paper and plastic is much more difficult than recycling single-material solutions. On the other hand, different materials need to be used to obtain acceptable properties such as sealing properties and mechanical properties. Therefore, another object of the present invention is to provide a polypropylene-based single-material solution showing good sealing behavior.

Means for Solving the Problems

[0010] These objects include at least a base material layer (SL), a first coating layer (CL1), and a second coating layer (CL2), where CL2 is (A) The following polypropylene homopolymer · The melt flow rate MFR2 (230 ° C / 2.16 kg) measured according to ISO 1133 is in the range of 10 to 4 pg / 10 min; · The melting temperature T determined by DSC according to ISO 11357 m is in the range of 149 to 162 ° C; and · The molecular weight distribution MWD determined by GPC is in the range of 2.4 to 4.5; and / or (B) The following ethylene-propylene random copolymer · The melt flow rate MFR2 (230 ° C / 2.16 kg) measured according to ISO 1133 is in the range of 4 to 40 g / 10 min; · The melting temperature T determined by DSC according to ISO 11357 m is in the range of 115 to 145 ° C; and · 13 The number of 2,1 and 3,1 site defects (regio defects) measured by 13C NMR is in the range of 0.01 to 1.2 mol%; including a polypropylene composition containing SL and CL1 are polypropylene-based layers. This is solved by the coated article described in claim 1.

[0011] Advantageous embodiments of the coated articles according to the present invention are specified in dependent claims 2 to 11. Claim 12 of the present invention relates to a method for manufacturing coated articles, and claim 13 relates to the use of coated articles as packaging materials. Claim 14 of the present invention refers to a method for recycling coated articles to obtain recycled polypropylene, and claim 15 refers to the use of said recycled polypropylene. [Modes for carrying out the invention]

[0012] definition Partial defect There are three distinct types of site defects in propylene polymers: 2,1-erythro(2,le), 2,1-threo(2,It), and 3,1 defects. A detailed description of the structure and formation mechanism of site defects in polypropylene is found in Chemical Reviews 2000, 100(4), pages 1316–1327. These defects are described in more detail below. 13 It is measured using 13C NMR.

[0013] As used in this invention, the term "2,1 site defect" is defined as the sum of 2,1-erythrosite defects and 2,1-threosite defects. A propylene random copolymer or polypropylene homopolymer having the number of site defects required for the propylene composition of this invention is usually prepared, preferably in the presence of a single-site catalyst.

[0014] Catalysts particularly affect the microstructure of polymers. Therefore, polypropylene prepared using metallocene catalysts exhibits a different microstructure compared to polypropylene prepared using Ziegler-Natta (Zn) catalysts. The most significant difference is the presence of site defects in polypropylene produced with metallocenes, which is not the case with polypropylene produced with Ziegler-Natta (Zn) catalysts.

[0015] Where the term “comprising” is used herein and in the claims, it does not preclude other unspecified elements having primary or minor functional importance. For the purposes of the present invention, the term “consisting of” is considered a preferred embodiment of the term “comprising of.” Hereinafter, where a group is defined as comprising at least a certain number of embodiments, this should also be understood as disclosing a group preferably comprising only these embodiments.

[0016] When the terms "including" or "having" are used, these terms are equivalent to "comprising" as defined above.

[0017] When an indefinite or definite article is used with a singular noun, such as "a," "an," or "the," this also includes the plural form of that noun unless otherwise specified.

[0018] Polypropylene homopolymer (A) The second coating layer (CL2) of the coated article according to the present invention has a melt flow rate MFR2 (230°C / 2.16 kg) measured according to ISO 1133 in the range of 10 to 40 g / 10 min; and a melt temperature T determined by DSC according to ISO 11357. m The polypropylene composition may include a polypropylene homopolymer (A) having a temperature in the range of 149 to 162°C and a molecular weight distribution (MWD) in the range of 2.4 to 4.5 as determined by GPC.

[0019] Preferred embodiments of the polypropylene homopolymer (A) are described below.

[0020] According to a preferred embodiment of the present invention, the polypropylene homopolymer (A) has one or more of the following characteristics: · 13 The number of 2,1 and 3,1 site defects, measured by 13C NMR, in the range of 0.01 to 1.2 mol%, preferably 0.4 to 0.85 mol%, and more preferably 0.45 to 0.8 mol%; • Manufactured in the presence of a single-site catalyst, preferably a metallocene catalyst; • Melt flow rate MFR2 (230°C / 2.16kg) in the range of 15-37 g / 10 min, preferably 20-35 g / 10 min, as measured according to ISO 1133, and melt temperature T in the range of 150-158°C, preferably 153-157°C, as determined by DSC according to ISO 11357. m ; • MWD in the range of 2.5 to 4.5, determined by GPC; • A cold xylene-soluble (XCS) fraction in the range of 0.05 to less than 5% by weight, preferably 0.1 to 4% by weight, as determined in accordance with ISO 16152.

[0021] In a more preferred embodiment of the present invention, the polypropylene homopolymer (A) comprises two polymer fractions (PPH-1) and (PPH-2), wherein the division between fraction (PPH-1) and fraction (PPH-2) is in the range of 30:70 to 70:30, preferably 45:55 to 65:35, and more preferably 55:45 to 60:40. Furthermore, (PPH-1) preferably has a melt flow rate MFR2 (230°C / 2.16kg) measured according to ISO 1133 in the range of 10 to 50 g / 10 min, more preferably 15 to 40 g / 10 min, and most preferably 20 to 35 g / 10 min, and / or (PPH-2) preferably has a melt flow rate MFR2 (230°C / 2.16kg) measured according to ISO 1133 in the range of 10 to 50 g / 10 min, more preferably 15 to 40 g / 10 min, and most preferably 20 to 35 g / 10 min.

[0022] Another preferred embodiment of the present invention specifies that the polypropylene homopolymer (A) has the advantage of containing only a small amount of hexane extract. Therefore, it is preferable that the polypropylene homopolymer (A) has a hexane extract content of less than 2.0% by weight, more preferably less than 1.5% by weight, as measured according to FDA testing.

[0023] In a more preferred embodiment of the present invention, the polypropylene homopolymer (A) has a crystallization temperature Tc, measured by DSC according to ISO 11357, in the range of 100 to 130°C, more preferably in the range of 105°C to 125°C, for example, in the range of 110°C to 120°C.

[0024] Another preferred embodiment of the present invention specifies that the polypropylene homopolymer (A) is produced in the presence of a metallocene catalyst, the metallocene catalyst being preferably a metallocene catalyst comprising any one of the embodiments described in WO2013 / 007650 A1, WO2015 / 158790 A2 and WO2018 / 122134 A1. Another preferred embodiment of the present invention uses a co-catalyst system comprising a boron-containing co-catalyst, such as a borate co-catalyst and an aluminoxane co-catalyst.

[0025] The polypropylene homopolymer (A) in either embodiment comprising the two fractions (PPH-1) and (PPH-2) is preferably produced by a method comprising the following steps: a) A step of polymerizing propylene in a first reactor (R1) to obtain a polymer fraction (PPH-1), b) A step of transferring the polymer fraction (PPH-1) and unreacted monomer from the first reactor to the second reactor (R2), c) A step of supplying propylene to the second reactor (R2), d) A step of polymerizing propylene in the second reactor (R2) in the presence of the polymer fraction (PPH-1) to obtain a polymer fraction (PPH-2) in a homogeneous mixture with (PPH-1), and thus obtaining the final polypropylene, wherein the polymerization is preferably carried out in the presence of a metallocene catalyst system as in any one of the embodiments described herein.

[0026] Further embodiments of the polypropylene homopolymer (A) and methods for producing the homopolymer are described, in particular, in an unpublished European patent application (Application No.: 20176798.5, filed May 27, 2020) by the same applicant as this application, as of the filing date of this application.

[0027] Ethylene propylene random copolymer (B) The second coating layer (CL2) of the coated article according to the present invention is an ethylene-propylene random copolymer (B) having a melt flow rate MFR2 (230 ° C / 2.16 kg) measured according to ISO 1133 in the range of 4 to 40 g / 10 min; a melting temperature T determined by DSC according to ISO 11357 m is in the range of 115 to 145 ° C; and 13 the number of 2,1 and 3,1 site defects measured by 13C NMR is in the range of 0.01 to 1.2 mol%. The polypropylene composition may include.

[0028] Preferred embodiments of the ethylene-propylene random copolymer (B) are described below.

[0029] A preferred embodiment of the present invention stipulates that the ethylene-propylene random copolymer (B) has one or more of the following characteristics: · It is produced in the presence of a single-site catalyst; · The molecular weight distribution MWD determined by GPC is in the range of 2.4 to 5.5, preferably 2.5 to 4.5; · The hexane extract content measured according to the FDA test is less than 2.0% by weight, preferably less than 1.5% by weight, more preferably 0.1 to 1.5% by weight; · The melt flow rate MFR2 (230 ° C / 2.16 kg) measured according to ISO 1133 is in the range of 17 to 35 g / 10 min, or 4 to 7 g / 10 min, and the melting temperature T determined by DSC according to ISO 11357 m is 120 to 140 ° C; · 13 The number of 2,1 and 3,1 site defects measured by 13C NMR is in the range of 0.1 to 1.0 mol%.

[0030] According to another preferred embodiment of the present invention, the ethylene propylene random copolymer (B) is an ethylene propylene random copolymer having an ethylene content in the range of 2.0 to 5.5% by weight, or in the range of 2.2 to 4.5% by weight, based on the weight of the ethylene propylene random copolymer.

[0031] In a more preferred embodiment of the present invention, the ethylene propylene random copolymer (B) has a crystallization temperature T determined by DSC according to ISO 11357. c However, the temperature range is 75 to 110°C, preferably 80 to 105°C.

[0032] Another preferred embodiment of the present invention specifies that the ethylene-propylene random copolymer (B) has a cold xylene-soluble (XCS) fraction determined according to ISO 16152, which is 0.1 to less than 15% by weight, preferably 0.5 to 5% by weight, based on the weight of the propylene random copolymer (B).

[0033] According to a more preferred embodiment of the present invention, the ethylene propylene random copolymer (B) comprises or consists of two polymer fractions (RACO-1) and (RACO-2), wherein the split between fractions (RACO-1) and (RACO-2) is preferably 30:70 to 70:30. Optionally, a small amount of prepolymer fraction, usually less than 5% by weight, may be present in the random propylene copolymer (B).

[0034] A further preferred embodiment of the present invention specifies that (RACO-1) preferably has an ethylene content in the range of 1.5 to 5.5% by weight, more preferably 2.0 to 5.0% by weight, and most preferably 2.5 to 4.0% by weight, and / or (RACO-2) preferably has an ethylene content in the range of 2.0 to 6.0% by weight, more preferably 2.5 to 5.5% by weight, and most preferably 3.0 to 5.0% by weight. The ethylene content of fraction (RACO-1) is preferably lower than that of fraction (RACO-2). Furthermore, (RACO-1) preferably has a melt flow rate MFR2 (230°C / 2.16kg) measured according to ISO 1133, which is preferably in the range of 3.0 to 20.0 g / 10 min, more preferably 5.0 to 17.0 g / 10 min, or 3.0 to 7.0 g / 10 min, most preferably 7.0 to 15.0 g / 10 min or 4.0 to 6.0 g / 10 min, and / or (RACO-2) preferably has a melt flow rate MFR2 (230°C / 2.16kg) measured according to ISO 1133, which is preferably in the range of 5.0 to 50.0 g / 10 min, more preferably 10 to 40 g / 10 min, most preferably 15 to 30 g / 10 min.

[0035] Another preferred embodiment of the present invention specifies that ethylene propylene random copolymer (B) is produced in the presence of a metallocene catalyst, which is preferably a metallocene catalyst comprising any one of the embodiments described in WO2013 / 007650 A1, WO2015 / 158790 A2, and WO2018 / 122134 A1. Another preferred embodiment of the present invention uses a co-catalyst system comprising boron-containing co-catalysts, such as borate co-catalysts and aluminoxane co-catalysts.

[0036] The ethylene propylene random copolymer (B) in any embodiment comprising two fractions (RACO-1) and (RACO-2) is preferably produced by a method comprising the following steps: a) A step of polymerizing propylene and ethylene comonomers in the first reactor (R1) to obtain a polymer fraction (RACO-1), b) A step of transferring the polymer fraction (RACO-1) and unreacted comonomers from the first reactor to the second reactor (R2), c) A step of supplying propylene and ethylene comonomer to the second reactor (R2), d) A step of polymerizing propylene and comonomer in the presence of the polymer fraction (RACO-1) in the second reactor (R2) to obtain a polymer fraction (RACO-2) which is a homogeneous mixture with (RACO-1), thereby obtaining the final ethylene propylene random copolymer, wherein the polymerization is carried out in the presence of any one of the metallocene catalyst systems described herein.

[0037] Further embodiments of the ethylene propylene random copolymer (B) and methods for producing the copolymer are described in particular in an unpublished European patent application (application number: 20176795.5, filed May 27, 2020) by the same applicant as this application, as of the filing date of this application.

[0038] Polypropylene composition The second coating layer (CL2) of the coated article according to the present invention comprises a polypropylene composition containing a polypropylene homopolymer (A) or an ethylene propylene random copolymer (B).

[0039] The polypropylene composition may contain, based on the total weight of the polypropylene composition, one or more conventional additives selected from the group consisting of slip agents, antiblocking agents, UV stabilizers, antistatic agents, alpha nucleating agents, antioxidants, and mixtures thereof, preferably in a total amount of 0.01 to 5.0% by weight, more preferably 0.05 to 3.0% by weight. Preferably, at least one antioxidant is added to the composition of the present invention.

[0040] Coated articles The coated article according to the present invention comprises at least a substrate layer (SL), a first coating layer (CL1), and a second coating layer (CL2).

[0041] According to a preferred embodiment of the present invention, the polypropylene layers SL and CL1 each contain more than 90% by weight of polypropylene, preferably 95 to 100% by weight of polypropylene, more preferably 99 to 100% by weight of polypropylene, and most preferably polypropylene, based on the total weight of the layers.

[0042] A further preferred embodiment of the present invention is that the polypropylene in layer SL is biaxially oriented polypropylene, and / or The polypropylene in layer CL1 is selected from the group consisting of polypropylene copolymers and homopolymers, and mixtures thereof, and is defined as a heterogeneous copolymer, preferably a homopolymer (A) or a random copolymer (B), more preferably a specific type of random copolymer.

[0043] If the polypropylene in layer CL1 is a heterogeneous copolymer, the compound preferably has one or more of the following properties: 890-900 kg / m 3 The density of the range; MFR2 in the range of 10-16g / 10min (230℃, 2.16kg); • Melting temperature in the range of 160-164°C; Crystallization temperature in the range of 120-128°C; • Vicat softening temperature A in the range of 140-155°C (10N, determined according to ISO 306).

[0044] According to a more preferred embodiment of the present invention, the coated article contains less than 10% by weight, preferably less than 5% by weight, and more preferably less than 1% by weight, of a material other than polypropylene, and the coated article is made of polypropylene.

[0045] To identify materials other than polypropylene, known methods such as NMR and IR are suitable. One preferred method is confocal Raman microscopy, which provides higher spatial resolution down to the micrometer scale. Raman spectroscopy is highly sensitive to both chemical and physical properties and generates a molecular fingerprint suitable for material identification (see, e.g., Paulette Guillory et al., Materials Today, 2009, 12, 38-39).

[0046] In a more preferred embodiment of the present invention, the coated article does not include any non-polypropylene layers, and preferably the coated article consists of layers SL, CL1, and CL2, meaning that the coated article is a complete single-material solution made of polypropylene.

[0047] According to yet another preferred embodiment of the present invention, CL2 comprises, preferably consists of, polypropylene homopolymer (A), and the sealing start temperature of the article is in the range of 105 to 118°C, preferably 110 to 116°C, and more preferably 113 to 115°C.

[0048] In another preferred embodiment of the present invention, CL2 comprises, preferably, ethylene propylene random copolymer (B), and the sealing start temperature of the article is in the range of 60 to 100°C, preferably 78 to 87°C, more preferably 80 to 86°C, and even more preferably 81 to 85°C.

[0049] A further preferred embodiment of the present invention specifies that the total thickness of the coated article is in the range of 10 to 200 μm, preferably 12 to 170 μm, and more preferably 15 to 100 μm.

[0050] In another preferred embodiment of the present invention, the thickness of layer SL is in the range of 5 to 40 μm, preferably 10 to 30 μm, and more preferably 15 to 25 μm.

[0051] According to yet another preferred embodiment of the present invention, the coating weight of layer CL1 is 1 to 20 g / m². 2 Preferably 3-18 g / m 2 Comfortably 5-15g / m 2 More preferably 7-12 g / m 2 It is within the range.

[0052] A further preferred embodiment of the present invention is that the coating weight of layer CL2 is 1 to 20 g / m². 2 Preferably 3-18 g / m 2 Comfortably 5-15g / m 2 More preferably 7-12 g / m 2 This specifies that it falls within the scope of [the specified range].

[0053] According to another preferred embodiment of the present invention, the coated article is an extruded coated article.

[0054] method The present invention also relates to a method for manufacturing a coated article according to the present invention, the method comprising an extrusion coating step.

[0055] The extrusion coating method may be carried out using conventional extrusion coating techniques. Therefore, the composition according to the present invention may be supplied to the extruder, typically in the form of pellets. From the extruder, the polymer molten material is preferably fed through a flat die to the substrate to be coated. The coated substrate is cooled on a chill roll and then passed through an edge trimmer and wound up.

[0056] The die width typically depends on the size of the extruder used. Therefore, for a 90mm extruder, a suitable width may be in the range of 600-1,200mm; for a 115mm extruder, 900-2,500mm; for a 150mm extruder, 1,000-4,000mm; and for a 200mm extruder, 3,000-5,000mm. The line speed (draw speed) is preferably 75m / min or higher, more preferably at least 100m / min. In most commercially operating machines, the line speed is preferably over 300m / min, or over 500m / min. Modern machines are designed to operate at line speeds of up to 1,000m / min, for example, 300-800m / min.

[0057] The polymer melting temperature is typically between 240 and 330°C. The polypropylene composition of the present invention can be extruded onto a substrate as a single-layer coating or as an outer layer in a co-extrusion process. In multilayer extrusion coatings, the polymer layer structure defined above and optionally other polymer layers may be co-extruded. If desired or necessary, further ozone and / or corona treatment can be performed by known methods.

[0058] use The present invention also refers to the use of coated articles as packaging materials, preferably as heat-resistant packaging materials for food and / or medical products.

[0059] Preferred packaging applications include liquid packaging for milk, juice, wine, or other liquids. Coated articles may be used for flexible packaging or rigid packaging applications, or for sterilizable food packaging, preferably for snacks, confectionery, meat, or cheese.

[0060] recycling Another aspect of the present invention relates to a method for obtaining recycled polypropylene by recycling coated articles, and to the use of said recycled polypropylene for manufacturing molded articles and films.

[0061] Next, the present invention will be described with reference to the following non-limiting embodiments. [Examples]

[0062] Experiment Part A.Measurement method The following definitions of terms and measurement methods apply to the above general description of the present invention and the following examples, unless otherwise defined.

[0063] Meltflow rate The melt flow rate (MFR) is determined according to ISO 1133 - Determination of the melt mass-flow rate (MFR) and melt volume-flow rate (MVR) of thermoplastics - Part 1: Standard method, and is expressed in g / 10 min. MFR is an indicator of the polymer's fluidity, i.e., its processability. A higher melt flow rate indicates lower polymer viscosity. The MFR2 for polypropylene is measured at a temperature of 230°C and a load of 2.16 kg.

[0064] Comonomer content of the second polymer fraction (RACO-2) The comonomer content of the second polymer fraction (RACO-2) is calculated according to formula (I).

number

[0065] Calculation of the melt flow rate (MFR2) of the polymer fraction (RACO-2) The MFR of the second polymer fraction (RACO-2) is calculated according to formula (II).

number

[0066] Quantification of fine structure by NMR spectroscopy (comonomer content and site defects) Quantitative nuclear magnetic resonance (NMR) spectroscopy was used to further quantify the comonomer content and comonomer arrangement distribution of the polymer. 13 C{ 1 The H}NMR spectrum is, 1 H and 13 For C, the spectra were recorded in solution using a Bruker Advance III 400 NMR spectrometer operating at 400.15 MHz and 100.62 MHz, respectively. All spectra were obtained. 13Using a 10 mm extended temperature probe head optimized for 1C, nitrogen gas was used for all gases, and the temperature was recorded at 125°C. Approximately 200 mg of the material was dissolved in 3 ml of 1,2-tetrachloroethane-d2 (TCE-d2) together with chromium-(III)-acetylacetonate (Cr(acac)3) to prepare a 65 mM solution of the mitigating agent in the solvent (Singh, G., Kothari, A., Gupta, V., Polymer Testing 28 5 (2009), 475). To obtain a homogeneous solution, the initial sample was prepared on a heat block, and then the NMR tube was further heated in a rotary oven for at least 1 hour. After insertion into the magnet, the tube was rotated at 10 Hz. This setting was chosen primarily for the high resolution and quantitative accuracy required to accurately quantify the ethylene content. Standard single-pulse excitation without NOE was employed using an optimized tip angle, a 1-second recycle delay, and a bilevel WALTZ16 decoupling scheme (Zhou, Z., Kuemmerle, R., Qiu, X., Redwine, D., Cong, R., Taha, A., Baugh, D. Winniford, B., J. Mag. Reson. 187 (2007) 225; Busico, V., Carbonniere, P., Cipullo, R., Pellecchia, R., Severn, J., Talarico, G., Macromol. Rapid Commun. 2007, 28, 1128). A total of 6144 (6k) transients were obtained per spectrum. Quantitative 13 C{ 1 The ¹H NMR spectra were processed and integrated using a proprietary computer program, and relevant quantitative properties were determined from the integrated values. All chemical shifts were indirectly referenced to 30.00 ppm of the central methylene group (EEE) in the ethylene block, using the chemical shift of the solvent. This approach allowed for comparative reference even in the absence of this structural unit. Characteristic signals corresponding to ethylene incorporation were observed (Cheng, HN, Macromolecules 17 (1984), 1950).

[0067] 2,1 A characteristic signal corresponding to the erythrotic site defect was observed (described in L. Resconi, L. Cavallo, A. Fait, F. Piemontesi, Chem. Rev. 2000, 100 (4), 1253; Cheng, HN, Macromolecules 1984, 17, 1950; and WJ. Wang and S. Zhu, Macromolecules 2000, 33 1157), requiring correction for the influence of the site defect on the measured properties. No characteristic signals corresponding to other types of site defects were observed.

[0068] The comonomer fraction is 13 C{ 1 The ethylene content was quantified using the method of Wang et al. (Wang, WJ., Zhu, S., Macromolecules 33 (2000), 1157) through the integration of multiple signals across the entire spectral region of the H} spectrum. This method was chosen for its robustness and its ability to account for the presence of site defects as needed. The integration region was slightly adjusted to enhance its applicability over the entire range of encountered comonomer content. For systems where only isolated ethylenes within the PPEPP sequence are observed, the method of Wang et al. was modified to mitigate the effect of non-zero integrals of sites known to be absent. This approach was achieved by reducing the overestimation of the ethylene content in such systems and by reducing the number of sites used to determine the absolute ethylene content as follows:

number

[0069] Using this series of parts, the corresponding integral equation is as follows:

number

[0070] The mole percentage of comonomer incorporation was calculated from the mole fraction. E[mol%]=100*fE

[0071] The weight percentage of comonomers incorporated was calculated from the mole fraction. E[Weight%]=100*(fE*28.06) / ((fE*28.06)+((1-fE)*42.08))

[0072] The comonomer sequence distribution at the triad level was determined using the analysis method of Kakugo et al. (Kakugo, M., Naito, Y., Mizunuma, K., Miyatake, T. Macromolecules 15 (1982) 1150). This method was selected for its robustness and the slight adjustment of the integration region to enhance its applicability to a wider range of comonomer content.

[0073] Xylene-soluble content (XCS, wt%) The xylene-soluble (XCS) fraction defined and described in this invention was measured according to ISO 16152 as follows: 2.0 g of polymer was dissolved in 250 ml of p-xylene with stirring at 135°C. After 30 minutes, the solution was allowed to cool at ambient temperature for 15 minutes, and then allowed to stand at 25 ± 0.5°C for 30 minutes. The solution was filtered through filter paper and placed into two 100 ml flasks. The solution from the first 100 ml container was evaporated in a nitrogen stream, and the residue was dried under vacuum at 90°C until a constant weight was reached. The xylene-soluble fraction (percent) can then be determined as follows. XCS%=(100*m*V0) / (m0*v) m0 = initial polymer amount (g); m = weight of residue (g); V0 = initial volume (ml); v = Volume of the analyte sample (ml)

[0074] DSC analysis, melting temperature (Tm), and crystallization temperature (Tc) Data were obtained using TA Instrument Q2000 differential scanning calorimetry (DSC) with 5–7 mg samples. DSC was performed in a heat / cool / heat cycle at a scan rate of 10°C / min in the temperature range of -30 to +225°C, according to ISO 11357 / part 3 / method C2. Crystallization temperature (T c ) and crystallization enthalpy (H c ) is determined from the cooling step, and the melting temperature (T m ) and enthalpy of fusion (H m ) is determined from the second heating step.

[0075] Flexural modulus The flexural modulus is measured according to EN ISO 1873-2 for an 80×10×4mm injection-molded model. 3 The test bar was determined according to ISO 178.

[0076] Hexane extract Hexane-extractable fractions were measured on 100 μm thick cast films manufactured on a single-layer cast film line with a melting temperature of 220°C and a chill-roll temperature of 40°C, in accordance with FDA regulations (federal registration, title 21, Chapter 1, part 177, section 1520, s. Annex B). Extraction was performed at a temperature of 50°C for an extraction time of 30 minutes.

[0077] Molecular weight characteristics The number-average molecular weight (Mn), weight-average molecular weight (Mw), and polydispersity (Mw / Mn) were measured by gel permeation chromatography (GPC) according to the following method. Weight-average molecular weight (Mw) and polydispersity (Mw / Mn) (where Mn is the number-average molecular weight and Mw is the weight-average molecular weight) were measured according to methods based on ISO 16014-1:2003 and ISO 16014-4:2003. A Waters Alliance GPCV 2000 instrument equipped with a refractive index detector and an online viscometer was used with a TosoHaas 3×TSK-gel column (GMHXL-HT) and 1,2,4-trichlorobenzene (TCB, stabilized with 200 mg / L of 2,6-ditert-butyl-4-methylphenol) as the solvent at a constant flow rate of 1 mL / min at 145°C. 216.5 μl of sample solution was injected for each analysis. The column set was calibrated using relative calibration with 19 narrow MWD polystyrene (PS) standards ranging from 0.5 kg / mol to 11,500 kg / mol and a well-characterized broad set of polypropylene standards. All samples were prepared by dissolving 5–10 mg of polymer in 10 mL (160°C) stabilized TCB (same as the mobile phase) and holding it in a GPC instrument for 3 hours with continuous shaking before sampling.

[0078] Seal behavior The sealing behavior of the coating was determined by measuring the hot tack force as follows: The maximum hot tack force, i.e., the maximum value of the force / temperature diagram, was determined and reported. Hot tack measurements were performed using a J&B hot tack tester according to the ASTM F 1921 method. This standard requires the sample to be cut into 15 mm wide slices. The sample was placed vertically in the hot tack tester and both ends were attached to mechanical locks. The tester was then sealed, the hot seal was withdrawn, and the resistance force was measured. The seal parameters were as follows: TIFF0007840342000005.tif68148

[0079] B. Materials used The kraft paper is UG kraft paper (coated weight: 70g / m²) commercially available from Billerud-Korsnas. 2 )

[0080] BOPP is a 20mm thick co-extruded biaxially oriented polypropylene film, commercially available from CASFIL (registered trademark) under the trade name RINCEL (registered trademark) MXM.

[0081] WG341C is a commercially available polypropylene copolymer from Borealis AG (Austria) with a density of 910 kg / m³ determined according to ISO 1183. 3 The melt flow rate (230°C / 2.16kg) is determined according to ISO 1133 (25g / 10min).

[0082] Daploy® WF420HMS is a structurally isomerized modified propylene homopolymer commercially available from Borealis AG (Austria) with a density of 900 kg / m³ determined according to ISO 1183. 3 The melt flow rate (230°C / 2.16kg) is determined according to ISO 1133 (26g / 10min).

[0083] Daploy™ SF313HMS is a structurally isomerized modified propylene homopolymer commercially available from Borealis AG (Austria) (density = 900 kg / m³ as determined according to ISO 1183). 3 The melt flow rate (230°C / 2.16kg) is determined according to ISO 1133 (15g / 10min).

[0084] Polypropylene (PPH, homopolypropylene) was prepared as follows:

[0085] Catalyst system Metallocene (MC1) (rac-anti-dimethylsilanediyl (2-methyl-4-phenyl-5-methoxy-6-tert-butyl-indenyl) (2-methyl-4-(4-tert-butylphenyl)indenyl) zirconium dichloride): [ka] It was synthesized according to the procedure described in WO2013 / 007650,E2. The MAO-silica support was prepared as follows.

[0086] Nitrogen was supplied to a steel reactor equipped with a mechanical stirrer and filter net, and the reactor temperature was set to 20°C. Next, silica grade DM-L-303 (7.4 kg) from AGC Si-Tech Co., pre-calcined at 600°C, was added from the feed drum, followed by careful pressurization and depressurization with nitrogen using a manual valve. Then, toluene (32 kg) was added. The mixture was stirred for 15 minutes. Next, a 30 wt% solution of MAO in toluene from Lanxess (17.5 kg) was added within 70 minutes via the feed line at the top of the reactor. The reaction mixture was then heated to 90°C and stirred for a further 2 hours at 90°C. The slurry was allowed to settle, and the mother liquor was filtered. The MAO-treated support was washed twice with toluene (32 kg) at 90°C, followed by settling and filtration. The reactor was cooled to 60°C, and the solid was washed with heptane (32.2 kg). Finally, the MAO-treated SiO2 was dried at 60°C under a nitrogen stream for 2 hours, and then dried under vacuum (-0.5 barg) with stirring for 5 hours. The MAO-treated support was collected as a free-flowing white powder and was found to contain 12.6% by weight of Al.

[0087] The final catalyst system was prepared as follows: 30 wt% MAO (2.2 kg) in toluene was added to a steel nitrogen blank reactor via a burette at 20°C. Then, toluene (7 kg) was added with stirring. Metallocene MC1 (286 g) was added from a metal cylinder, followed by the flow of 1 kg of toluene. The mixture was stirred at 20°C for 60 minutes. Then, trityltetrakis(pentafluorophenyl) borate (336 g) was added from a metal cylinder, followed by the flow of 1 kg of toluene. The mixture was stirred at room temperature for 1 hour. The resulting solution was added over 1 hour to the stirred cake of MAO-silica support prepared as described above. The cake was left to stand for 12 hours, then dried under N2 flow at 60°C for 2 hours, and further dried under vacuum (-0.5 barg) with stirring for 5 hours. The dried catalyst was sampled in the form of a pink, free-flowing powder containing 13.9 wt% Al and 0.26 wt% Zr.

[0088] Polymerization for preparing the present invention polymer of PPH was carried out at the Borstar pilot plant, which had two reactor setups (loop-gas reactor (GPR1)) and a prepolymerizer, using the catalyst system described above.

[0089] Table 1 shows the polymerization conditions for PPH and the final properties of the resin. [Table 1]

[0090] Polypropylene (PP1, propylene random copolymer) was prepared as follows.

[0091] Catalyst system for PP1 Metallocene (MC1) (rac-anti-dimethylsilanediyl (2-methyl-4-phenyl-5-methoxy-6-tert-butyl-indenyl) (2-methyl-4-(4-tert-butylphenyl)indenyl) zirconium dichloride) [ka] The material was synthesized according to the procedure described in WO2013 / 007650,E2. The MAO-silica support was prepared as follows: Nitrogen was supplied to a steel reactor equipped with a mechanical stirrer and filter net, and the reactor temperature was set to 20°C. Next, silica grade DM-L-303 (7.4 kg) from AGC Si-Tech Co, pre-calcined at 600°C, was added from the feed drum, followed by careful pressurization and depressurization with nitrogen using a manual valve. Then, toluene (32 kg) was added. The mixture was stirred for 15 minutes. Next, a 30 wt% solution of MAO in toluene from Lanxess (17.5 kg) was added within 70 minutes via the feed line at the top of the reactor. The reaction mixture was then heated to 90°C and stirred for a further 2 hours at 90°C. The slurry was allowed to settle, and the mother liquor was filtered. The MAO-treated support was washed twice with toluene (32 kg) at 90°C, followed by settling and filtration. The reactor was cooled to 60°C, and the solid was washed with heptane (32.2 kg). Finally, the MAO-treated SiO2 was dried at 60°C under a nitrogen stream for 2 hours, and then dried under vacuum (-0.5 barg) with stirring for 5 hours. The MAO-treated support was collected as a free-flowing white powder and was found to contain 12.6% by weight of Al.

[0092] The final catalyst system was prepared as follows: 30 wt% MAO (2.2 kg) in toluene was added to a steel nitrogen blank reactor through a burette at 20°C. Then, toluene (7 kg) was added with stirring. Metallocene MC1 (286 g) was added from a metal cylinder, followed by the flow of 1 kg of toluene. The mixture was stirred at 20°C for 60 minutes. Then, trityltetrakis(pentafluorophenyl) borate (336 g) was added from a metal cylinder, followed by the flow of 1 kg of toluene. The mixture was stirred at room temperature for 1 hour. The resulting solution was added over 1 hour to a stirred cake of MAO-silica support prepared as described above. The cake was left to stand for 12 hours, then dried under N2 flow at 60°C for 2 hours, and further dried under vacuum (-0.5 barg) with stirring for 5 hours. The dried catalyst was sampled in the form of a pink, free-flowing powder containing 13.9 wt% Al and 0.26 wt% Zr.

[0093] Catalyst system for PP2 The catalyst used was antidimethylsilanediyl[2-methyl-4,8-di(3,5-dimethylphenyl)-1,5,6,7-tetrahydro-s-indasen-1-yl][2-methyl-4-(3,5-dimethylphenyl)-5-methoxy-6-tert-butylinden-1-yl]zirconium dichloride, disclosed as ICS3 in WO2020 / 239602 A1.

[0094] Preparation of MAO-silica support Nitrogen was supplied to a steel reactor equipped with a mechanical stirrer and filter net, and the reactor temperature was set to 20°C. Next, silica grade DM-L-303 (5.0 kg) from AGC Si-Tech Co., pre-calcined at 600°C, was added from the feed drum, followed by careful pressurization and depressurization with nitrogen using a manual valve. Then, toluene (22 kg) was added. The mixture was stirred for 15 minutes. Next, a 30 wt% solution of MAO in toluene from Lanxess (9.0 kg) was added within 70 minutes via the feed line at the top of the reactor. The reaction mixture was then heated to 90°C and stirred for a further 2 hours at 90°C. The slurry was allowed to settle, and the mother liquor was filtered. The catalyst was washed twice with toluene (22 kg) at 90°C, then allowed to settle, and filtered. The reactor was cooled to 60°C, and the solid was washed with heptane (22.2 kg). Finally, the MAO-treated SiO2 was dried at 60°C under a nitrogen stream for 2 hours, and then dried under vacuum (-0.5 barg) with stirring for 5 hours. The MAO-treated support was collected as a fluid white powder and was found to contain 12.2% by weight of Al.

[0095] Catalyst preparation 30% by weight of MAO (0.7 kg) in toluene was added to a steel nitrogen blank reactor through a burette at 20°C. Then, toluene (5.4 kg) was added while stirring. The above catalyst (93 g) was added from a metal cylinder, followed by the flow of 1 kg of toluene. The mixture was stirred at 20°C for 60 minutes. Then, trityltetrakis(pentafluorophenyl) borate (91 g) was added from a metal cylinder, followed by the flow of 1 kg of toluene. The mixture was stirred at room temperature for 1 hour. The resulting solution was added over 1 hour to a stirred cake of MAO-silica support prepared as described above. After letting the cake stand for 12 hours, it was dried under a stream of N2 at 60°C for 2 hours, and then dried under vacuum (-0.5 barg) with stirring for 5 hours. The dried catalyst was sampled in the form of a pink, free-flowing powder containing 13.9% by weight of Al and 0.11% by weight of Zr.

[0096] Polymerization to prepare random copolymers of PP1 and PP2 was carried out at the Borstar pilot plant, which had two reactor setups (loop-gas reactor (GPR1)) and a prepolymerizer, using the catalyst system described above.

[0097] Table 2 shows the polymerization conditions for PP1 and PP2 and the final properties of the resins. [Table 2]

[0098] Polymer powders (PPH, PP1, and PP2) were compounded at 220°C using a Coperion ZSK 70 co-rotating twin-screw extruder with 0.2 wt% antiblocking agent (synthetic silica; CAS No. 7631-86-9); 0.1 wt% antioxidant (Irgafos 168FF); 0.1 wt% sterically hindered phenol (Irganox 1010FF); 0.02 wt% Ca-stearate; and 0.02 wt% (based on the total weight of the polymer) of unlubricated stearate (synthetic hydrotalcite; CAS No. 11097-59-9).

[0099] C. Coated articles Using the compound resins PPH, PP1, and PP2 described above, coated articles summarized in Table 3 were prepared by resin extrusion coating as follows.

[0100] Extrusion coating was performed on a Beloit co-extrusion coating line. This line featured Peter Cloeren's EBR dies and a 5-layer feed block. The line width was 850–1,000 mm, and the maximum possible line speed was 1,000 m / min. The line speed was maintained at 150 m / min.

[0101] In the coating line described above, kraft paper (Comparative Examples 1 and 2) or BOPP (Examples 1-3) has two coating layers (coating layers 1 and 2) that are both 9 g / m². 2 Coating weight (total coating weight = 18g / m²) 2 Coated with a co-extruded structure having ).

[0102] The polymer melt temperature was set to 290°C, and the extruder temperature profile was 200-240-290-290°C. The chill roll was matte, and its surface temperature was 15°C. The die opening used was 0.65 mm, and the nip distance was 180 mm. The molten film first contacted the substrate at a position +10 mm from the nip towards the substrate. The pressure of the pressure roll was 3.0 kp / cm². 2 The line speed was 150 m / min.

[0103] [Table 3]

[0104] The seal initiation temperature (SIT) is obtained from hot tack measurement. In this invention, the temperature at which the hot tack strength reaches 1N (°C) is defined as the minimum seal initiation temperature (SIT), and the temperature at which the hot tack strength remains at 1N (°C) is defined as the maximum seal initiation temperature (SET).

[0105] D. Discussion of Results As can be seen from Table 3 above, the complete polypropylene articles according to Examples 1-3 of the present invention exhibit significantly lower SIT values ​​than the coated articles containing a base layer made of kraft paper according to Comparative Examples 1 and 2. Furthermore, the coated articles according to the present invention have the advantage of being easily recyclable because they do not contain any materials other than polypropylene. Moreover, as can be seen from the data in Table 2, PP1 used in IE2 coated articles has a very low amount of hexane extract (1.1 wt%) according to FDA testing and is therefore very suitable for all kinds of food applications. Preferred embodiments of the present invention include the following: [1] A coated article comprising at least a base layer (SL), a first coating layer (CL1), and a second coating layer (CL2), CL2 is (A) Polypropylene homopolymers below • Melt flow rate MFR2 (230°C / 2.16kg), measured according to ISO 1133, is in the range of 10-40 g / 10 min; • The melting temperature Tm, determined by DSC according to ISO 11357, is in the range of 149-162°C; and • The molecular weight distribution (MWD) determined by GPC is in the range of 2.4 to 4.5; and / or (B) The following ethylene propylene random copolymers • Melt flow rate MFR2 (230°C / 2.16kg), measured according to ISO 1133, is in the range of 4-40g / 10min; • The melting temperature Tm, determined by DSC according to ISO 11357, is in the range of 115-145°C; and • The number of 2,1 and 3,1 site defects (regio defects) measured by 13C NMR is in the range of 0.01 to 1.2 mol%; A polypropylene composition comprising, SL and CL1 are polypropylene-based layers in an article. [2] CL2 has the following characteristics: The number of 2,1 and 3,1 site defects measured by 13C NMR is in the range of 0.01 to 1.2 mol%, preferably 0.4 to 0.85 mol%, and more preferably 0.45 to 0.8 mol%; • Manufactured in the presence of a single-site catalyst, preferably a metallocene catalyst; The melt flow rate MFR2 (230°C / 2.16kg), measured according to ISO 1133, is in the range of 15-37 g / 10 min, preferably 20-35 g / 10 min, and the melt temperature Tm, determined by DSC according to ISO 11357, is in the range of 150-158°C, preferably 153-157°C; • The MWD determined by GPC is in the range of 2.5 to 4.5; The cold xylene-soluble (XCS) fraction, measured according to ISO 16152, is in the range of 0.05 to less than 5% by weight, preferably 0.1 to 4% by weight; A coated article according to [1], comprising, preferably consisting of, a polypropylene homopolymer (A) having one or more of the above. [3] The coated article according to [1] or [2], wherein CL2 comprises, preferably, a polypropylene homopolymer (A), the polypropylene comprising two polymer fractions (PPH-1) and (PPH-2), the split between fractions (PPH-1) and (PPH-2) being in the range of 30:70 to 70:30, preferably 45:55 to 65:35, and more preferably 55:45 to 60:40. [4] CL2 has the following characteristics: • Manufactured in the presence of a single-site catalyst; The molecular weight distribution (MWD) determined by GPC is in the range of 2.4 to 5.5, preferably 2.5 to 4.5; • The hexane extract content, as measured according to FDA testing, is less than 2.0% by weight, preferably less than 1.5% by weight, and more preferably between 0.1% and 1.5% by weight; The melt flow rate MFR2 (230°C / 2.16kg), measured according to ISO 1133, is in the range of 17-35 g / 10 min or 4-7 g / 10 min, and the melt temperature Tm, determined by DSC according to ISO 11357, is 120-140°C; The number of 2,1 and 3,1 site defects measured by 13C NMR is in the range of 0.1–1.0 mol%; The coated article according to [1], comprising, preferably consisting of, an ethylene propylene random copolymer (B) having one or more of the above. [5] The ethylene propylene random copolymer (B) is an ethylene propylene random copolymer having an ethylene content in the range of 2.0 to 5.5% by weight or in the range of 2.2 to 4.5% by weight, based on the weight of the ethylene propylene random copolymer; and / or The propylene random copolymer (B) has a crystallization temperature Tc determined by DSC according to ISO 11357, which is in the range of 75 to 110°C, preferably 80 to 105°C; and / or The coated article according to [4], characterized in that the ethylene propylene random copolymer (B) has a cold xylene soluble (XCS) fraction determined according to ISO 16152, which is 0.1 to less than 15% by weight, preferably 0.5 to 5% by weight, based on the weight of the ethylene propylene random copolymer (B). [6] The coated article according to [4] or [5], wherein the ethylene propylene random copolymer (B) comprises or consists of two polymer fractions (RACO-1) and (RACO-2), the division between fractions (RACO-1) and (RACO-2) is preferably 30:70 to 70:30. [7] An extruded coated article, the coated article described in any of [1] to [6]. [8] Polypropylene layers SL and CL1 each consist of more than 90% by weight of polypropylene, preferably 95-100% by weight of polypropylene, more preferably 99-100% by weight of polypropylene, and most preferably polypropylene, based on the total weight of the layer; and / or Preferably, the polypropylene in layer SL is biaxially oriented polypropylene; and / or The polypropylene of layer CL1 is selected from the group consisting of polypropylene copolymers, homopolymers, and mixtures thereof, preferably homopolymer (A) or random copolymer (B), more preferably heterogeneous copolymer. A coated article according to any one of [1] to [7], characterized in that it is a coated article. [9] The coated article comprises less than 10% by weight, preferably less than 5% by weight, more preferably less than 1% by weight, of a material other than polypropylene, and more preferably the coated article is made of polypropylene; and / or The coated article does not include a non-polypropylene layer, preferably the coated article consists of layers SL, CL1 and CL2. A coated article according to any one of [1] to [8], characterized in that it is a coated article.

[10] CL2 comprises, preferably consisting of, polypropylene homopolymer (A), and the sealing start temperature of the article is in the range of 105-118°C, preferably 110-116°C, more preferably 113-115°C; or CL2 comprises, preferably consists of, ethylene propylene random copolymer (B), and the sealing start temperature of the article is in the range of 60 to 100°C, preferably 78 to 87°C, more preferably 80 to 86°C, and even more preferably 81 to 85°C. A coated article according to any one of [1] to [9], characterized in that it is a coated article.

[11] The total thickness of the coated article is in the range of 10 to 200 μm, preferably in the range of 12 to 170 μm, more preferably in the range of 15 to 100 μm; and / or The thickness of layer SL is in the range of 5 to 40 μm, preferably in the range of 10 to 30 μm, more preferably in the range of 15 to 25 μm; and / or The coating weight of layer CL1 is in the range of 1 to 20 g / m2, preferably 3 to 18 g / m2, more preferably 5 to 15 g / m2, and even more preferably 7 to 12 g / m2; and / or The coating weight of layer CL2 is in the range of 1 to 20 g / m2, preferably 3 to 18 g / m2, more preferably 5 to 15 g / m2, and even more preferably 7 to 12 g / m2. A coated article according to any one of [1] to

[10] , characterized in that it is a coated article.

[12] A method for manufacturing a coated article according to any one of [1] to

[11] , comprising an extrusion coating step.

[13] Use of the coated articles described in any of [1] to

[11] as packaging materials, preferably as heat-resistant packaging materials for food and / or medical products.

[14] A method for recycling a coated article as described in any of [1] to

[11] to obtain recycled polypropylene.

[15] The method according to

[14] , characterized in that the recycled polypropylene is used for the manufacture of molded articles and films.

Claims

1. A coated article comprising at least a base layer (SL), a first coating layer (CL1), and a second coating layer (CL2), CL2 is, (A) The following polypropylene homopolymers - Melt flow rate (MFR) measured according to ISO 1133 2 (230°C / 2.16 kg) in the range of 10-40 g / 10 min; - Melting temperature T determined by DSC in accordance with ISO 11357 m in the range of 149 to 162°C; and - The molecular weight distribution (MWD) determined by GPC is in the range of 2.4 to 4.5; optionally include; and (B) The following ethylene propylene random copolymers - Melt flow rate (MFR) measured according to ISO 1133 2 (230°C / 2.16 kg) is in the range of 4 to 40 g / 10 min; - Melting temperature T as determined by DSC in accordance with ISO 11357 m The temperature range is 115 to 145°C; and ・ 13 The number of 2,1 and 3,1 site defects measured by 13C NMR is in the range of 0.01 to 1.2 mol%; A polypropylene composition comprising, SL and CL1 are polypropylene-based layers in an article.

2. CL2 has the following characteristics: ・ 13 The number of 2,1 and 3,1 site defects measured by 13C NMR is in the range of 0.01 to 1.2 mol%; • Manufactured in the presence of a single-site catalyst; - Melt flow rate (MFR) measured according to ISO 1133 2 The melting temperature T (at 230°C / 2.16 kg) is in the range of 15 to 37 g / 10 min and is determined by DSC according to ISO 11357. m The temperature range is 150 to 158°C; - The MWD determined by GPC is in the range of 2.5 to 4.5; - The cold xylene-soluble (XCS) fraction, as measured according to ISO 16152, is in the range of 0.05 to less than 5% by weight; The coated article according to claim 1, characterized by comprising a polypropylene homopolymer (A) having one or more of the above.

3. The coated article according to claim 1 or 2, characterized in that CL2 comprises a polypropylene homopolymer (A), the polypropylene comprising two polymer fractions (PPH-1) and (PPH-2), the division between fractions (PPH-1) and (PPH-2) being in the range of 30:70 to 70:

30.

4. CL2 has the following characteristics: • Manufactured in the presence of a single-site catalyst; - The molecular weight distribution (MWD) determined by GPC is in the range of 2.4 to 5.5; - The hexane extract content, as measured according to FDA testing, is less than 2.0% by weight; ・ Melt flow rate MFR measured in accordance with ISO 1133 2 (230 °C / 2.16 kg) is in the range of 17 to 35 g / 10 min, or 4 to 7 g / 10 min, and the melting temperature T determined by DSC in accordance with ISO 11357 m is 120 to 140 °C; ・ 13 The number of 2,1 and 3,1 site defects measured by 13C NMR is in the range of 0.1 to 1.0 mol%; The coated article according to claim 1, characterized by comprising an ethylene propylene random copolymer (B) having one or more of the following.

5. The ethylene propylene random copolymer (B) is an ethylene propylene random copolymer having an ethylene content in the range of 2.0 to 5.5% by weight, or in the range of 2.2 to 4.5% by weight, based on the weight of the ethylene propylene random copolymer; and / or The ethylene propylene random copolymer (B) has a crystallization temperature T determined by DSC according to ISO 11357. c However, the temperature range is 75 to 110°C; and / or The coated article according to claim 4, characterized in that the ethylene propylene random copolymer (B) has a cold xylene-soluble (XCS) fraction determined according to ISO 16152, which is 0.1 to less than 15% by weight, based on the weight of the ethylene propylene random copolymer (B).

6. The coated article according to claim 4 or 5, characterized in that the ethylene propylene random copolymer (B) comprises or consists of two polymer fractions (RACO-1) and (RACO-2), wherein the division between fractions (RACO-1) and (RACO-2) is 30:70 to 70:

30.

7. A coated article according to any one of claims 1 to 6, which is an extruded coated article.

8. Polypropylene layers SL and CL1 each contain more than 90% by weight of polypropylene based on the total weight of the layer; and / or The polypropylene in layer SL is biaxially oriented polypropylene; and / or The polypropylene of layer CL1 is selected from the group consisting of polypropylene copolymers, homopolymers, and mixtures thereof. A coated article according to any one of claims 1 to 7, characterized in that

9. The coated article contains less than 10% by weight of a material other than polypropylene; and / or The coated article does not include a non-polypropylene layer. A coated article according to any one of claims 1 to 8, characterized in that

10. CL2 comprises polypropylene homopolymer (A), and the sealing start temperature of the article is in the range of 105 to 118°C; or CL2 contains ethylene propylene random copolymer (B), and the sealing start temperature of the article is in the range of 60 to 100°C. A coated article according to any one of claims 1 to 9, characterized in that

11. The total thickness of the coated article is in the range of 10 to 200 μm; and / or The thickness of layer SL is in the range of 5 to 40 μm; and / or The coating weight of layer CL1 is 1 to 20 g / m². 2 It is within the range; and / or The coating weight of layer CL2 is 1 to 20 g / m². 2 It is within the range of, A coated article according to any one of claims 1 to 10, characterized in that

12. A method for manufacturing a coated article according to any one of claims 1 to 11, comprising an extrusion coating step.

13. Use of a coated article according to any one of claims 1 to 11 as a packaging material.

14. A method for recycling a coated article according to any one of claims 1 to 11 in order to obtain recycled polypropylene.

15. The method according to claim 14, characterized in that the recycled polypropylene is used for the manufacture of molded articles and films.

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