Are you interested in a sphere - AFM cantilever combination outside of our standard product range?
- Spheres on silicon AFM cantilevers with an aluminum reflective coating
- Spheres on special AFM cantilevers
- Custom material or custom size spheres
Unlike the complex apex shape of an etched silicon AFM tip, the simple, well-defined spherical shape of colloidal particles allows quantitative hardness calculations based on the sphere indenter model. In addition, the larger contact area makes force measurements and topography scans on delicate samples such as soft polymers and living matter safer, with lower risk of sample damage.
The different available sphere materials are beneficial for specific chemical, physical or biological property requirements. In contrast, the vast majority of sharp AFM tips are made of silicon, silicon nitride or quartz-like materials, while other materials are available only as coatings.
Colloidal probes are growing in popularity over the last two decades with increasing number of applications for studying mechanical properties, adhesion, particle-surface interactions, hydrodynamics, etc. sQube® is there to meet the present and future requirements of the scientific and industrial communities.
on NANOSENSORS™ SD-qp-CONT-TL tipless AFM cantilever
on NanoWorld® PNP-TR-TL-Au tipless AFM cantilever
Colloidal AFM probes with spheres made of silicon dioxide, borosilicate glass, gold, polystyrene and acrylic (PMMA) are available in different dimensions ranging from 1.5 to 20 micrometers. Please note that colloidal AFM probes based on PNP AFM cantilevers are not suitable for application in fluids. For this application NanoAndMore recommends colloidal AFM probes based on qp-CONT or qp-SCONT AFM cantilevers.
Please note that state-of-the-art synthesis of gold microparticles does not guarantee ideal surface smoothness and ideal spherical shape. Some nanoroughness and small shape deviations are an inevitable result of the nature of the synthesis process.
Silicon dioxide (SiO2) microspheres with diameters A = 2 µm, B = 3.5 µm, C = 6.62 µm, D = 10.2 µm or E = 15 µm, all ± 5%
Borosilicate glass (BSG) microspheres with diameters 0 = 2.5 µm, A = 5 µm, B = 10 µm or C = 20 µm, all ± 10%
Gold (Au) microspheres* with diameters A = 1.5 – 3 µm, B = 3 - 5.5 µm or C = 5.5 - 9 µm
Polystyrene (PS) spheres with diameters A = 1.98 µm, B = 3.6 µm, C = 6.1 µm, D = 10.8 µm or E = 14.45 µm, all ± 5%
Polymethyl methacrylate (PMMA, acrylic) microspheres with diameters A = 1.5 µm, B = 3.36 µm, C = 6.44 µm, D = 9.57 µm or E = 14.59 µm, all ± 5%
* Please note that the state-of-the-art synthesis process of gold microparticles cannot guarantee a perfectly spherical shape with perfect surface smoothness. Nanoroughness and small shape deviations are to be expected.
Colloidal probes with AFM cantilevers made of silicon, silicon nitride or a quartz-like material are available in different stiffnesses ranging from 0.01 N/m to 42 N/m.
The NANOSENSORS™ TL-NCH tipless AFM cantilevers are made of silicon and have rectangular shape. The nominal force constant is 42 N/m. They are highly doped to dissipate static charge and chemically inert to most common solvents.
The holder chip features alignment grooves on the back side which guarantee precise alignment of the AFM cantilever position when used together with the NANOSENSORS™ Alignment chip.
The NANOSENSORS™ TL-FM tipless AFM cantilevers are made of silicon and have rectangular shape. The nominal force constant is 2.8 N/m. They are highly doped to dissipate static charge and chemically inert to most common solvents.
The holder chip features alignment grooves on the back side which guarantee precise alignment of the AFM cantilever position when used together with the NANOSENSORS™ Alignment chip.
The NANOSENSORS™ TL-CONT tipless AFM cantilevers are made of silicon and have rectangular shape. The nominal force constant is 0.2 N/m. They are highly doped to dissipate static charge and chemically inert to most common solvents.
The holder chip features alignment grooves on the back side which guarantee precise alignment of the AFM cantilever position when used together with the NANOSENSORS™ Alignment chip.
The NANOSENSORS™ SD-qp-CONT-TL tipless AFM cantilevers are a product from the NANOSENSORS™ Special Developments List. They are made of a quartz-like material and have a rectangular shape. The nominal force constant is 0.1 N/m.
A partial reflective gold coating is deposited on the free end of the detector side of the AFM cantilever. The main advantages of the coating are the low bending and the reduced drift, particularly for measurements in liquid environments.
The holder chip features alignment grooves on the back side which guarantee precise alignment of the AFM cantilever position when used together with the NANOSENSORS™ Alignment chip.
The NANOSENSORS™ SD-qp-SCONT-TL tipless AFM cantilevers are a product from the NANOSENSORS™ Special Developments List. They are made of a quartz-like material and have a rectangular shape. The nominal force constant is 0.01 N/m.
A partial reflective gold coating is deposited on the free end of the detector side of the AFM cantilever. The main advantages of the coating are the low bending and the reduced drift, particularly for measurements in liquid environments.
The holder chip features alignment grooves on the back side which guarantee precise alignment of the AFM cantilever position when used together with the NANOSENSORS™ Alignment chip.
The NanoWorld PNP-TR-TL-Au AFM probes feature two different triangular tipless AFM cantilevers made of silicon nitride with nominal force constants of 0.32 and 0.08 N/m.
The AFM cantilevers have an overall gold coating. The holder chip that is made of Pyrex.
NB: We glue a colloidal microsphere only on one of the AFM cantilevers. You can choose whether you want the microsphere glued to the long or the short AFM cantilever.
NB: Colloidal AFM probes with PNP-TR-TL-Au AFM cantilevers have complex behavior that is strongly dependent on ambient temperature and humidity, often leading to AFM cantilever bending and AFM cantilever torsion. For this reason we strongly recommend using colloidal AFM probes with SD-qp-CONT-TL or SD-qp-SCONT-TL AFM cantilevers for all applications which require very soft AFM cantilevers and/or operation in fluids. We do not guarantee the integrity or functionality of PNP-based colloidal probes.