Molecular assemblies, use of molecular assemblies to provide anti-adhesion surfaces, and methods for applying molecular assemblies to solid surfaces.

A molecular assembly of amphiphilic molecules with spontaneous reorientation forms an entropy barrier against adhesion, effectively reducing bacterial and protein adsorption by adapting to environmental polarity, addressing the unexplained mechanisms of natural anti-adhesive properties.

JP7843764B2Active Publication Date: 2026-04-10LEIBNIZ INST FUR POLYMERFORSCHUNG DRESDEN EV
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-23
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing technologies have not fully explained the physical mechanisms underlying adhesion control, particularly in the anti-adhesive properties of natural systems like the cuticle of Collembola, and have not effectively replicated these properties in technical applications.

Method used

A molecular assembly of amphiphilic molecules with a layered structure that undergoes spontaneous reorientation in an aqueous environment, forming an entropy barrier against adhesion, utilizing amphiphilic molecules with a hydrophobic portion larger than the hydrophilic portion, soluble in polar aprotic solvents, and capable of self-assembly to form an interfacial layer that adapts to environmental polarity.

Benefits of technology

The molecular assembly demonstrates significant anti-adhesion effects against proteins and microorganisms by inducing spontaneous reorientation, providing an effective entropy barrier that reduces adhesion, as shown by reduced bacterial and protein adsorption.

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Abstract

The present invention relates to a molecular assembly (1) comprising a structural arrangement (2) of amphiphilic molecules, characterized in that the amphiphilic molecules (2) are selected from the group containing amphiphilic molecules (2) that a) have a hydrophobic portion that is larger than the hydrophilic portion based on the molecular weight, b) are soluble in polar aprotic solvents and form self-assembled layer structures from solution in the absence of polar aprotic solvents, and c) show molecular orientation in the assembled layer structure (3), especially at interfaces, preferably in an aqueous environment, where the amphiphilic molecules (2) in the assembled layer structure (3) are in contact with the aqueous environment. The present invention further relates to a method for coating a solid surface (5) with the molecular assembly (1), comprising dissolving the amphiphilic molecules (2) in a polar aprotic solvent and applying the resulting solution to the solid surface (5) by spin-coating.
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Description

Technical Field

[0001] The present invention relates to a molecular assembly of an amphiphilic molecule having a structural configuration and the use of the molecular assembly for providing an anti-adhesive surface coating. The present invention also relates to a method for coating a solid surface with the molecular assembly.

Background Art

[0002] Various mechanisms affecting surface adhesion are known in the plant and animal kingdoms. These include, for example, the lotus effect, which has already been successfully transferred to technical applications. Although the molecular and structural properties defining interfacial phenomena in nature have been extensively studied, it has hitherto been impossible to fully explain the physical mechanisms underlying adhesion control. Objects of current research include, for example, the anti-adhesive cuticles of Collembola having a honeycomb-like structure with an overhanging cross-sectional profile. The lipid-rich envelope of the cuticle of Collembola has been found to contain aliphatic hydrocarbons, especially steroids, fatty acids and wax esters. It is conceivable that wax esters promote the water-repellent properties of the cuticle, but it has been impossible to explain the role of components such as steroids and fatty acids. However, in particular, it is presumed that the physical properties of different molecules contribute to the adhesion effect and the anti-adhesion effect.

Summary of the Invention

Problems to be Solved by the Invention

[0003] An object of the present invention is to provide a method for utilizing anti-adhesive properties based on the physicochemical process of amphiphilic molecules.

Means for Solving the Problems

[0004] This object is achieved by a molecular assembly having the features described in claim 1 and a method according to claim 11. Developments are specified in the dependent claims.

[0005] The essence of the present invention is a molecular assembly of selected amphiphilic molecules that is layered in structure and undergoes a spontaneous reorientation process, thereby forming an entropy barrier against adhesion when in contact with an aqueous environment.

[0006] Molecular assemblies having a structural configuration of amphiphilic molecules have been proposed, and amphiphilic molecules are, a) Having a hydrophobic portion that is larger than the hydrophilic portion in terms of molecular weight, b) Soluble in polar aprotic solvents, and capable of forming a self-assembled layer structure from solution in the absence of polar aprotic solvents, c) In the formed layer structure, particularly in the interfacial layer, the molecules are oriented according to the polarity of the environment, which is preferably an aqueous environment. It is characterized by being selected from a group containing amphiphilic molecules, and the amphiphilic molecules in the formed structure are in contact with an aqueous environment.

[0007] The interfacial layer is understood to refer to the single layer in the layered structure of a molecular assembly that is in contact with the aqueous environment. The surface of the interfacial layer forms the interface.

[0008] Within the scope of the present invention, contact with an aqueous environment means that one surface of the structure on which the molecular aggregate according to the present invention is formed is completely wetted with water. The wetted surface forms an interface.

[0009] For the molecular assemblies according to the present invention, amphiphilic molecules having the characteristics described in a), b), and c) are investigated.

[0010] The molecular assemblies according to the present invention are based on the ability of selected amphiphilic molecules to form layered structures through self-assembly. Therefore, the molecular assemblies are preferably layered structures of amphiphilic molecules, where the amphiphilic molecules are oriented perpendicular to the interface. This layered structure, consisting of one or more layers, can also be referred to as an assembly.

[0011] It has been found that the formation of molecular assemblies of selected amphiphilic molecules within the structure of a molecular layer or molecular interface layer brings about a spontaneous reorientation process of amphiphilic molecules, induced by amphiphilicity, in the molecular interface layer of the corresponding interface layer structure in contact with the aqueous environment. This results in an anti-adhesion effect against proteins and microorganisms, particularly bacteria, present in the aqueous environment.

[0012] The spontaneous reorientation process of individual molecules that results in anti-adhesion properties due to molecular aggregates is based on the autonomous orientation tendency of individual amphiphilic molecules.

[0013] The selection of amphiphilic molecules may preferably include those in which the hydrophobic portion accounts for at least 95%, preferably more than 95%, of the molecular weight of the amphiphilic molecule. This is particularly applicable to cholesterol molecules.

[0014] The desired effect of the spontaneous reorientation process in molecular assemblies has also been found in applicable types of amphiphilic molecules having molecular weights in the range of 300 g / mol to 2000 g / mol, preferably in the range of 300 g / mol to 413 g / mol. Preferably, molecular assemblies according to the present invention can have amphiphilic molecules having molecular weights in the range of 300 g / mol to 413 g / mol. Molecular assemblies having applicable types of amphiphilic molecules having molecular weights exceeding 2000 g / mol can be considered. Therefore, particularly synthetically produced amphiphilic molecules can have higher molecular weights, i.e., molecular weights exceeding 2000 g / mol, while also satisfying the requirements of a), b), and c).

[0015] The molecular assembly according to the present invention may also have amphiphilic molecules in which the molecular orientation in the interface layer where the layer structure is formed is based on the polarity of the environment, such that changes in the molecular orientation of the interface layer of the formed layer structure occur due to changes in the polarity of the environment.

[0016] According to one embodiment of the molecular assembly of the present invention, the amphiphilic molecule can be a polycyclic alcohol, particularly a sterol.

[0017] The molecular aggregate may also have a mass ratio of at least 1% by weight (hereinafter abbreviated as weight%), preferably at least 10% by weight, of cholesterol molecules and / or dehydrocholesterol molecules. That is, at least 1% by weight, preferably at least 10% by weight, of selected amphiphilic molecules can be cholesterol molecules and / or dehydrocholesterol molecules. The ratio of cholesterol molecules and / or dehydrocholesterol molecules has a favorable effect on the anti-adhesion effect of the molecular aggregate in the form of an interfacial layer structure when in contact with an aqueous environment.

[0018] According to a further embodiment of the molecular assembly according to the present invention, the amphiphilic molecule can be stigmasterol, cholecalciferol, and / or retinol. Stigmasterol, cholecalciferol, and retinol molecules in the molecular assembly were found to reorient relatively quickly upon contact with an aqueous environment, with little to no spontaneous reorientation process, which is associated with a deterioration in the anti-adhesion properties of the molecular assembly. However, the anti-adhesion effect is significantly better than that of molecular assemblies of similar non-amphiphilic molecules. When stigmasterol, cholecalciferol, and retinol molecules are used, it is therefore advantageous to further use at least 1% by weight, preferably at least 10% by weight, of cholesterol and / or dehydrocholesterol molecules to produce the molecular assembly.

[0019] Furthermore, it is possible to form molecular aggregates using cholesterol molecules, dehydrocholesterol molecules, stigmasterol molecules, cholecalciferol molecules, and retinol molecules as amphiphilic molecules. Cholesterol molecules, dehydrocholesterol molecules, stigmasterol molecules, cholecalciferol molecules, and retinol molecules can be used in different ratios.

[0020] Cholesterol molecules form triclinic crystals, which is thought to result in a relatively "loose" arrangement in the corresponding layers of the molecular aggregate. This promotes the mobility of molecules within the layers. In contrast, stearic acid and palmitic acid molecules, components of the cuticle of springtails (Collembola), form monoclinic crystals and are deposited in densely packed layers. As a result, even when the polarity of the surrounding medium changes, the spontaneous reorientation process induced by the assumed amphiphilicity of the molecules is hindered.

[0021] The molecular assembly according to the present invention has the following further properties. Changes in the polarity of the surrounding / contacting medium lead to reorientation induced by the amphiphilicity of amphiphilic molecules within the molecular interface layer of the corresponding aggregate (layer structure). This reorientation can be detected macroscopically by dynamic contact angle measurement or microscopically by force spectroscopy based on atomic force microscopy. The spontaneous reorientation process of amphiphilic molecules within the molecular interface layer of the corresponding aggregate forms the basis for entropy-induced anti-adhesion properties when in contact with an aqueous solution, which can be detected by force spectroscopy based on atomic force microscopy with spatial and temporal resolution.

[0022] The molecular assembly according to the present invention can be structurally designed in the form of a multilayer of cholesterol molecules. Such cholesterol multilayers exhibit very characteristic behavior during dynamic contact angle measurement. In dynamic contact angle measurement, a water droplet is applied to the molecular assembly that is the test subject, and the shape of the droplet is observed. Then, the droplet is sucked back, and the shape of the droplet during that process is observed again. This procedure is repeated at different application times. In the molecular assembly within the structure of the cholesterol multilayer, the shape of the droplet at the time of application shows a moderately hydrophobic interface. When the droplet is sucked back immediately after application, its shape remains unchanged, which also indicates the hydrophobic property of the interface of the molecular assembly. For a longer application time, such as 20 seconds, a different situation occurs. The droplet disintegrates, which indicates that the interface of the molecular assembly is very hydrophilic. Similar behavior has also been observed for the molecular assembly of cholesterol analogs.

[0023] The molecular assembly according to the present invention can thus have a mixture of amphiphilic molecules, particularly cholesterol analogs, in different proportions having characteristics a), b) and c). Preferably, the molecular assembly according to the present invention has at least 1% by weight of cholesterol molecules. The molecular assembly according to the present invention can also have non-amphiphilic molecules suitable for incorporation into the structure of the molecular assembly. The proportion of non-amphiphilic molecules in the molecular assembly can have a mass proportion of 99% by weight or less. The non-amphiphilic molecule used can be, for example, a stearyl palmitate molecule. According to one embodiment of the molecular assembly according to the present invention, the stearyl palmitate molecule can be present in a proportion of 99% by weight. In this case, it is preferred that cholesterol molecules are used as amphiphilic molecules.

[0024] The layer structure of the molecular assembly according to the present invention can have a thickness of 15 nm.

[0025] Preferably, the molecular assembly is deposited by spin coating in the form of a layer structure of cholesterol molecules arranged perpendicular to the interface on the solid surface. In this process, the interface of the layer structure facing away from the solid surface is preferably in contact with an aqueous solution that is pure water.

[0026] The molecular assembly according to the present invention is particularly useful for use as an anti-adhesive agent to a solid surface.

[0027] The subject of the present invention is also a method of coating a solid surface with the molecular assembly according to the present invention, comprising first dissolving an amphiphilic molecule in a polar aprotic solvent, and then applying the solution thus formed to the solid surface by spin coating. The amphiphilic molecule is applied to the solid surface by spin coating. As a result of the application and subsequent removal of the polar aprotic solvent, the amphiphilic molecules aggregate to form a layer structure, which can be brought into contact with an aqueous environment to form anti-adhesive properties after removing the polar aprotic solvent.

[0028] It is possible to use chloroform as the polar aprotic solvent. The solvent evaporates after application to the solid surface. It is possible to assist the evaporation of the solvent using an air stream or reduced pressure.

[0029] Possible further solvents are acetone, benzene, ethanol, ether, hexane or methanol.

[0030] Further details, features and advantages of embodiments of the present invention can be found in the following description of exemplary embodiments with reference to the accompanying drawings. The drawings are as follows.

Brief Description of the Drawings

[0031] [Figure 1] FIG. 1 shows a highly simplified schematic view of the molecular assembly according to the present invention for explaining the anti-adhesive properties of the molecular assembly. [Figure 2]Figure 2 shows the measurement results of bacterial adhesion (a and b) and protein adsorption (c and d) to molecular aggregates. [Figure 3] Figure 3 shows the measurement results of bacterial adhesion (a and b) and protein adsorption (c, d and e) for molecular assemblies formed from stearyl palmitate or cholesterol molecules, or for molecular assemblies formed from stearyl palmitate and cholesterol molecules in different mixing ratios. [Modes for carrying out the invention]

[0032] This invention is based on the finding that a combination of selected amphiphilic molecules, particularly cholesterol molecules, and effective self-assembly of selected molecules in a multilayer structure that results in slow, adaptable, and cooperative interfacial mobility of the molecular assemblies, leads to significant entropic repulsion between proteins and microorganisms.

[0033] Figure 1a shows a greatly simplified schematic diagram of molecular assembly 1 according to the present invention, using cholesterol molecule 2 as an example of a selected amphiphilic molecule. Figure 1a shows the layer structure 3 of molecular assembly 1 applied to a solid surface 5 with cholesterol molecule 2 oriented perpendicular to the interface 4. Reference numeral 2.1 indicates a magnified view of a single cholesterol molecule in molecular assembly 1. Cholesterol molecule 2.1 has a polar portion 6 and a nonpolar portion 7. Located at the interface 4 in the layer structure 3 of molecular assembly 1, and therefore located in the interface layer of the layer structure 3, cholesterol molecule 2 orients itself according to the polarity of the surrounding medium. For example, in a nonpolar environment such as air, the nonpolar portion 7 faces the interface 4, but in a polar surrounding medium such as water, the polar portion 6 is initially oriented toward the interface 4. In the layer structure 3 of molecular assembly 1, cholesterol molecule 2 tends to undergo a spontaneous reorientation process upon contact with an aqueous solution, as shown in Figure 1b.

[0034] Figure 1b shows molecular assembly 1 with interface 4 in contact with a polar environment. Cholesterol molecules 2 are initially oriented with their polar portions 6 toward interface 4. However, spontaneous reorientation processes are observed in individual cholesterol molecules 2 or small aggregates 8 of cholesterol molecules 2 (i.e., the non-polar portions 7 temporarily oriented toward interface 4). These spontaneous reorientation processes are shown as examples by dashed lines in Figure 1b for two molecule / molecular assembly. The possible directions of reorientation of cholesterol molecules 2 in layered structure 3 are indicated by arrows in each case.

[0035] Furthermore, Figure 1b shows the transition of cholesterol molecule 2 at interface 4 from an unoriented, unbound state to a constrained, protein-bound state. The binding of protein 9 to interface 4 constrains cholesterol molecule 2 during its spontaneous reorientation process. This constraint is indicated by symbol 10. Due to a tendency induced by the entropy of the molecule that restores reorientation ability, minimizing free enthalpy weakens the binding of protein 9 at interface 4, and therefore, protein 9 detaches.

[0036] The method for coating a solid surface 5 with molecular aggregate 1 is described in more detail below.

[0037] Molecular assembly 1 can be applied to a solid surface 5 by spin coating, thereby forming a layered structure 3 of molecular assembly 1. Such a layered structure 3 of selected amphiphilic molecules will be referred to below as SCL (spin-coated lipid multilayers).

[0038] SCL is formed on a silicon wafer as the substrate. 10 × 15 mm 2A substrate of a certain size is washed by immersion in a solution of deionized water, ammonia, and hydrogen peroxide (volume ratio 5 / 1 / 1) at 70°C for 15 minutes, rinsed repeatedly with Milli-Q water, and then dried in a nitrogen stream. The washed substrate is immediately used for the formation of SCL by spin coating. For spin coating, cholesterol molecules 2 are dissolved in chloroform (concentration 2 wt%). The solution thus formed is applied to the solid surface 5 by spin coating (LabSpin6, SUESS MicroTec) at a rotation speed of 3000 rpm and an acceleration of 3000 rpm / second for 30 seconds. Anti-adhesion properties are formed as soon as the formed layer structure 3 comes into contact with the aqueous solution.

[0039] Figure 2 shows the results of bacterial adhesion (a and b) and protein adsorption (c and d) to molecular assemblies composed of molecules identified in the lipid-rich envelopes of Collembola species. Two different bacterial species (Staphylococcus epidermidis [a] and Escherichia coli [b]) and two different protein species (bovine serum albumin [c] and lysozyme [d]) were used in the experiment. Figures a and b plot the normalized number of bacteria found on each surface from incubation to 1 hour later (normalized relative to the control surface - silicon dioxide [SiO2]). Figures c and d plot the absolute protein adsorption mass on each surface (determined by measurement using a vibrating quartz microbalance). In measurements of bacterial adhesion (a and b) and protein adsorption (c and d), the minimum amount of bacteria and protein was consistently detected on molecular aggregates formed from cholesterol molecules. The observed differences were statistically significant.

[0040] Figure 3 shows the results of bacterial adhesion (a and b) and protein adsorption (c, d, and e) measurements for molecular assemblies formed from stearyl palmitate or cholesterol molecules, or for molecular assemblies formed from stearyl palmitate and cholesterol molecules at different mixing ratios (100 / 0 = 100 wt% stearyl palmitate + 0 wt% cholesterol; 99 / 1 = 99 wt% stearyl palmitate + 1 wt% cholesterol; 90 / 10 = 90 wt% stearyl palmitate + 10 wt% cholesterol; 50 / 50 = 50 wt% stearyl palmitate + 50 wt% cholesterol; 0 / 100 = 0 wt% stearyl palmitate + 100 wt% cholesterol). In the experiments conducted, we investigated whether the adhesion reduction properties of cholesterol molecule aggregates are maintained even when mixed molecular aggregates are formed from cholesterol molecules and a second component (stearyl palmitate) that does not possess adhesion reduction properties. Two different bacterial species (Staphylococcus epidermidis[a] and Escherichia coli[b]), two different protein species (bovine serum albumin[c] and lysozyme[d]), and a complex protein mixture (10% fetal bovine serum[e]) were used in the experiments. Figures 3a and 3b plot the normalized number of bacteria found on each surface from incubation to 1 hour later (normalized relative to the control surface - silicon dioxide [SiO2]). Figures c, d, and 3e plot the absolute protein adsorption mass on each surface (determined by measurement using a vibrating quartz microbalance). In measurements of bacterial adhesion (Figures a and b), it was found that even a weight percentage of cholesterol molecules in the mixed molecular aggregate of 10% resulted in a reduction in bacterial adhesion comparable to that of a molecular aggregate containing 100% cholesterol by weight. On the other hand, in measurements of protein adsorption (Figures c, d, and e), it was found that even a weight percentage of cholesterol molecules in the mixed molecular aggregate of 1% resulted in a reduction in bacterial adhesion comparable to that of a molecular aggregate composed of 100% cholesterol by weight.

[0041] Dynamic adaptation of cholesterol SCL to the polarity of the environment The ability of cholesterol molecules 2 in the layered molecular assembly 1 to reorient in response to the polarity of the surrounding medium was detected by dynamic contact angle measurement and force spectroscopy based on atomic force microscopy.

[0042] Force spectroscopy measurements were performed using hydrophobic colloidal probes or individual Escherichia coli cells immobilized on the tip of the colloidal probes. Both types of probes were pressed against the surface of cholesterol SCL immersed in aqueous solution at different time intervals. Quantification of the resulting interaction forces revealed a continuous increase with contact time, demonstrating the reorientation of cholesterol molecules, where the nonpolar portions of the molecules face the interface (to maximize hydrophobic interactions). The initial interface state was restored upon interruption of contact with water, indicating that the reorientation process was repeatable multiple times.

[0043] Dynamic contact angle measurements on cholesterol SCL in air showed that high advancing and receding water contact angles were obtained when droplets were applied and immediately removed. These results indicate that the nonpolar portions of cholesterol molecules in the interfacial layer are initially oriented toward the interface, while the polar portions face inward. However, when the droplets were maintained on the surface for approximately 20 seconds after application and before removal, strong three-phase boundary pinning was observed, indicating that the interface has hydrophilic properties. During this 20-second waiting period, reorientation of the cholesterol molecules occurred, with the polar portions facing toward the interface. This process was also reversible.

[0044] Reorientation fluctuations at the interface of cholesterol-containing SCL are the cause of entropy repulsion. The anti-adhesion properties of cholesterol-containing SCL were shown to correlate with its dynamic adaptation as a response to changes in environmental polarity. It can be inferred that changes in the orientation of cholesterol molecules at the interface, caused by entropy, mechanistically link these features. Adsorption of biomolecules or deposition of (bacterial) cells requires adaptation of the orientation (polarity) of the SCL interface, thereby constraining the orientation state of cholesterol and consequently reducing the entropy of the system. Protein adsorption to cholesterol SCL was observed to decrease as the temperature increased from 15°C to 40°C.

[0045] The discovered entropy bioadhesion barrier, resulting from a reorientation process at the interface of cholesterol-containing SCLs, enables numerous technological applications.

[0046] These results indicate that cholesterol organizes itself into molecular aggregates, which can limit bioadhesion through entropic effects. The combination of the amphiphilic nature of cholesterol molecules and its effective aggregation in a layered structure, resulting in slow, adaptive, and cohesive interfacial mobility of the aggregates, was revealed as a prerequisite for significant entropic repulsion. [Explanation of Symbols]

[0047] List of symbols 1 molecular assembly 2 Cholesterol molecules 2.1 Cholesterol Molecules 3 layer structure 4 Interface 5 Solid surface 6 Polar part 7 Non-polar part 8 Molecular assembly 9 Proteins 10 Reorientation Constraints

Claims

1. A molecular assembly (1) having a structural configuration of an amphiphilic molecule (2), wherein the amphiphilic molecule (2) is a) Having a hydrophobic portion that is larger than the hydrophilic portion in terms of molecular weight, b) Soluble in polar aprotic solvents, and capable of forming a self-assembled layer structure from a solution in the absence of the polar aprotic solvent, and c) In the formed layer structure (3), the interfacial layer undergoes molecular orientation in an aqueous environment. A molecular assembly (1) characterized by being selected from the group consisting of amphiphilic molecules (2), wherein the amphiphilic molecules (2) in the formed layer structure (3) are in contact with an aqueous environment.

2. The molecular assembly (1) according to claim 1, characterized in that the hydrophobic portion accounts for at least 95% of the molecular weight of the amphiphilic molecule (2).

3. The molecular assembly (1) according to claim 1 or 2, characterized in that the amphiphilic molecule (2) has a molecular weight in the range of 300 g / mol to 2000 g / mol.

4. The molecular assembly (1) according to any one of claims 1 to 3, characterized in that amphiphilic molecules (2) are used in which the molecular orientation in the interface layer of the layer structure (3) is based on the polarity of the environment, such that the change in the molecular orientation of the interface layer in which the layer structure (3) is formed is caused by a change in the polarity of the environment.

5. The molecular assembly (1) according to any one of claims 1 to 4, characterized in that the amphiphilic molecule (2) is a polycyclic alcohol.

6. The molecular assembly (1) according to claim 1, characterized in that at least 1% by weight of the amphiphilic molecule (2) is a cholesterol molecule and / or a dehydrocholesterol molecule.

7. The molecular assembly (1) according to any one of claims 1 to 4, characterized in that the amphiphilic molecule (2) is stigmasterol, cholecalciferol, and / or retinol.

8. A molecular assembly (1) according to any one of claims 1 to 7, which also has a proportion of non-amphiphilic molecules of 99% by weight or less.

9. Use of the molecular assembly (1) according to any one of claims 1 to 8 as an anti-adhesive for a solid surface (5).

10. A method for coating a solid surface (5) with molecular assemblies (1) in a layer structure (3) according to any one of claims 1 to 8, comprising dissolving the amphiphilic molecules (2) in a polar aprotic solvent, and applying the solution thus formed to the solid surface (5) by spin coating.

11. The method according to claim 10, characterized in that chloroform is used as the polar aprotic solvent.

Citation Information

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