Method of Construction of Material That Work on All the Range of Wavelengths or Frequency or Energy of Photon

The main objective of this research work is to decrease work function of any given element or compound or material. To decrease the work function of the given material we have to decrease the bandwidth between conduct band and valance band. Because according to definition of work function, the amount of energy that required the remove the electron from valance band of an atom and it is also called ionization energy. These all energies depend upon the band width that is greater than the band width greater energy required to remove the electron from the surface, and less than the band width and lesser amount of energy required to remove the electron from of materials. In this work we are trying to give an theoretical model or relation, how to decrease the work function of a material by applying external pressure on atoms and doping of the material that has screening or shielding effects. With the help of this model we can increase the efficiency of material used in solar cell that is cell work for all range of frequencies and by construction material bases on this we can increase the efficiency of solar cell or any type of material working solar cell principle.


Introduction
The total amount of energy received at ground level from the Sun is about 3.3% higher than average in January and lower in July. In terms of energy, sunlight at Earth's surface is around 52 to 55 percent infrared 42 to 43 percent visible, and 3 to 5 percent ultraviolet. In this research work, we are trying to give a theoretical model, that decreases the work function of the material especially, photonic material from IR to Visible range frequencies because the maximum amount of energy in our atmosphere is energy of photon. The utilization of such huge amount of energy is possible only if we constructed materials which can emit the electron from atom, for all ranges of frequencies. This is possible to decrease the work function of the material either by doping of the different material that has shielding effect or by applying the Van Der Waals force relation. Base on these principles we can construct photonic materials that have different work function and can be used for different frequency of photon especially IR and Visible photon.
Photonic crystals are periodically structured electromagnetic media, generally possessing photonic band gaps: ranges of frequency in which light cannot propagate through the structure. The study of photonic crystals is likewise governed by the Bloch F. theorem, and intentionally introduced defects in the crystal. Felix Bloch pioneered the study of wave propagation in three dimension-ally periodic media in 1928, which proved that waves in such a medium could propagate without scattering, when the photon incident on the material the energy of the photon observed electron or electron cloud of an atom. The energy observation is started from the outer most valance orbital i.e. the outer most electron of an atom and goes on the excited state or kicks out from the orbits of an atom; hence the photoelectric effect take place. Let the energy of incident photon on the surface of photonic material is hf, where h is plank constant and f is frequency and the amount of energy required to remove or electron from its valance orbit to conduct orbit hf 1 where f 1 is frequency needed to excite the electron from valance band or orbit1 and the energy hf 2 of excited state, where f 2 is frequency of exciting the electron for conducing band or orbit 2 and the difference between them gives, 2 1 hf hf hf = − , which implies smaller the difference of hf 2 − hf 1 , where hf is smaller that is f is smaller and shows that on changing the energy level or orbit difference we can obtain the necessary value of hf 2 − hf 1 . In this way we can change frequency for our desire and increase the efficiency of the photonic materials like solar cell.
On the other hand, work function of the material is define as the minimum amount of the energy required to remove the electron from the material surface which is given by hf 3 where h = plank's factor and f 3 is the minimum frequency required to remove the electron from the surface, which is equal to or less than incident frequency; then we can obtain the relation.
In general, In Equation (2), f n + 1 is frequency of orbit n + 1 and f n is the frequency of orbit  (2) we obtain the relation where λ n + 1 , λ n and λ n , or λ is corresponding wavelength of n + 1, n orbit and difference wavelength of two orbit n + 1 and n.
Photonic crystals usually consist of dielectric materials, that is, materials that serve as electrical insulators or in which an electromagnetic field can be propagated with low loss. Materials used for making a Photonic band gap are: Silicon, Germanium, Gallium and so on.

Literature
Composite optical materials can display useful optical properties that are qualitatively dissimilar from those of their underlying constituents. Nano composite materials are especially well suited for photonic applications because they can be constructed in such a manner as to produce enhanced nonlinear optical response. More recently entangled states of light have been used to perform functions unthinkable in the context of classical physics, such as the demonstration of quantum cryptography and quantum teleportation (those materials which interact with certain frequency that is we can transform quantum information from one to another place). One application entails the development of techniques for the construction of imaging systems that can achieve a transverse resolution that exceeds the classical Rayleigh criterion [1]. Photonic crystal working in the optical range of electromagnetic spectrum but PCs for X-ray should present a modulation of some A 0 which is a solid state crystal. EM field store more energy if it has extreme at the region of high dielectric function. Bragg diffraction is the primary feature of the system of PBG material can be used for initial characterization. When refractive index contrast is low it is good approx. to use ordinary diffraction or dynamic to characterized PCs [2]. The mid-infrared wavelength range from 2 to 20 microns is a spectral region of tremendous interest which is important for a wide range of applications ranging from chemical and bio-Sensing to spectroscopy and thermal imaging, optical fiber can transmit the light from visible to near IR, industrial and military applications, such as remote sensing and explosive detection or free-space communication systems [3].
The electromagnetic band gap overlaps the electronic band edge by at least a few kT in energy, then electron-hole radioactive recombination, which creates  [4]. The concept of a photonic material is explained in terms of Bragg diffraction. The concept of Bragg reflection applies equally well to visible radiation except that we cannot rely on atoms to do work for all researcher [5]. GaAs are used in various electronic applications such as wireless communication, microwave, and high-speed digital systems. Silicon appears as thin films of amorphous or poly crystalline form in TFT-technology, in solar cell.
SiGe is needed to introduce electron accelerating strain in the Si lattice. GaAs, InP, and GaP, has occurred culminating in the development of a blue semiconductor laser using GaN [6]. As in the 3D case, we can create dielectric system which exhibits a complete photonic band gap, a set of frequencies in which light of any polarization cannot propagate in any in-plane direction and drill air columns in dielectric. At the dielectric contrast of GaAs, the only combination which was found to have a photonic band gap in both polarization was the triangular lattice of air columns in dielectric [7]. Photonic crystals can be used to crowave kinetic inductance detectors for the far-IR is coupling incident radiation into the device [11].
A well-known thin-film Gallium nit-ride LED structure is fabricated by removing the sapphire layer using a laser and roughening the revealed n-doped Gallium nit-ride layer. Gallium nit-ride thin-films, wafer-bonded to oxidized include spatial and temporal modes, frequency, polarization and angular momentum. Photons also possess continuous quantum variables, such as the quantized field quadrature, which can be utilized in special classes of information protocols. Silicon has a much higher refractive index than silica, leading to 1000 times smaller wave guide bend radius compared to that in silica wave guides.
Silicon's indirect band gap of 1.12 eV and low intrinsic carrier concentration makes it transparent to photons at the telecommunication wavelength (1.55 µm) [24].
Up to now, entangled photon pairs have been generated by optical pumping in passive semiconductor wave guides by exploiting four-wave mixing in silicon or spontaneous parametric down conversion in aluminum gallium arsenide.
Aluminum Gallium Arsenide device that emits photon pairs at telecom wavelengths and operates at room temperature [25]. Three-dimensional confinement of both electrons and holes in hetero-structures gives rise to quantum dots which potentially provide on-demand single-photon generation across the NIR range with near unity internal efficiency. Efficient photon collection represents a major technological challenge associated with quantum emitters. Integrated collection techniques with over 98% mode coupling efficiency exist for quantum dots [26].
InGaAs/GaAs quantum dots demonstrate single-photon emission for wavelengths up to 1400 nm, while InAsP/InP quantum dots emission can be achieved across the entire telecom spectrum. Multi-photon entangled states can be generated, constituting a particularly useful resource for quantum communication.
The combination of a diode junction and an embedded quantum dot has led to the demonstration of an electrically driven entangled-photon source of high enough quality to perform quantum teleportation [27] [28].
It is also found that the size and composition with alloy effect can tune the band-gap energy, which suggests an effective way to reach the desirable electrical and optical properties. Interestingly, both the size and the composition can tune the band-gap energy of Nano compounds. In particular, the composition tun-able band-gap may be a better way for wider band-gap materials [29]. Ionization potential is the electric potential (V) required to separate an electron from the or- I R Z N = , where Z * = an effective nuclear charge, N * = an effective quantum number could be assigned to each electron and I = energy required to ionize an electron [30].
The photo-ionization of 3d'' impurities in semiconductors with zinc blende structure is to be treated by investigating the matrix elements for electric dipole transitions between linear combinations of d-type one-electron wave functions which can be mixed with p-states and the continuum of states in the conduction band, i.e. Bloch functions [31]. The force attracting the electron to the nucleus depends upon magnitude of the core charge, and the separation of the electron from the nucleus. The first ionization energy will therefore be the work done when removing an electron from the core and so will be that needed to pull the electron away against the attraction from the core charge. This will not be an infinite quantity as the magnitude of the force falls rapidly with distance [32].
The ionization energy (IE) is defined as the minimum amount of energy that needs to be absorbed by an atom or molecule in its electronic and vibration ground states in order to form an ion that is also in its ground states by ejection of an electron. Ionization energies of most molecules are in the range of 7 -15 eV. The ionization cross section describes an area through which the electron must travel in order to effectively interact with the neutral [33]. Lebedev gave the radiation pressure of light in 1901. In principle, if the currents in the mirror/antenna can be determined from the drive fields, then the electromagnetic fields due those currents can be calculated, and combined with the drive fields to obtain the total fields. This effect of the currents on themselves can be expressed mathematically as an integral equation for the currents, which takes into account the good-conductor boundary condition at the surface of the mirror/antenna [34].

Methodology: Theoretical Calculation
In this paper we are trying to give theoretical model or relation that help to construct such type of material which work on difference range of frequencies that is produce the current or energy for all frequencies. To give the theoretical relation here we follow the Bohr's relation of energy for hydrogen atom and pressure area relation.
If we increase the pressure on an atom surface externally, we can decrease the width or the distance between two outer most orbits of an atom that is the two outer most orbits come closure. This shows amount of energy is required to excite electron from inner outer most orbit to outer most orbit needed less. But in normal condition or without applying the pressure on atom the distance between the inner outer most and outer most is quite greater then applied presure condition and hence the energy required to excite the electron from inner most outer orbit to outer most orbit needed more.
Here the outer most orbit is last orbit of an atom when we consider the counting of orbit from nucleus and the inner outer most orbit is second last orbit of nucleus.

R. C. Pageni et al. Journal of Applied Mathematics and Physics
Mathematical Derivation: From hydrogen model we have Bohr's energy for different orbits. Let us consider the energy of valance band or energy of ground state electron is E n and conductance band or excited state electron is E n + 1 . Now we relation E n + 1 − E n = hf when an electron goes from ground state to excited state and on coming to ground state again by emitting the energy of hf. Similar phenomena we are using here that is amount of energy required to go electron from valance band to conduct band is given by E n + 1 − E n = hf, Where h = planks factor and f = incident frequency of a photon. Let us consider, N = Nucleus of an atom, n = 1 is the nearest orbit of nucleus where electron is bounded tightly, n = 2 is orbit of nucleus where electron is less bounded then n = 1, n = 3 is another orbit where electron is less bounded then n = 2. In similar way the electron bounded is going decrease as we go far away from nucleus. As shown in Figure 1.
According to Bohr's the amount of energy required to bounded the electron around the nucleus is given by where R H = Rydberg's constant.
We also have, Bohr's radius This relation shows that how much amount of energy required to bind the electron by proton or nucleus when the electron is at a certain i.e. r n . Let us consider, E n + 1 is the amount of energy required to remove the electron from the outer shell of atom of any atom is at a distance r n + 1 then the energy can be obtain similar as Equation (6).
Since we have an energy relation 1 1 0.529 H n n zR E r In other word, E n + 1 and E n is the energy level of valance band or ground band of orbit n and n + 1 of an atom then the transition between them is possible. If we consider n as ground state and n + 1 is excited state of electron in an atom then, Now on subtracting Equation (7) from (6) we have, where hf is incident photon, which is needed to, excited an electron from one energy level to another that means from E n to E n + 1 level.
Here from Equation (9) we have an interesting relation that the different between two energy levels are related to the distance between two orbits is directly proportional and product is inversely related which means incident photon energy is directly related difference of 1 n n r r + − it means that smaller the difference smaller the amount of energy required to excited an electron from r n to r n + 1 .
And another relation is inversely related to the product of the distance of two orbits from the nucleus ( 1 n n r r +  ). Since the atom is not solid that is within atom there is the space so we can compress the atom. Here we are studying the compression of the atom from the outer surface area during the compression the of an atom equal from all sides. the outer shell come to closure to the second last orbit or ground state orbit while the ground state orbit is less effect due to apply the pressure from outer side of atom.
Lets P n and P n + 1 are the pressure applying on energy level of an atom which is at a distance of r n and r n + 1 from nucleus, with constant force F then pressure exerted on n and n + 1 orbits.
Then external pressure is applied on orbit of n + 1 and n orbit with constant force to an atom is given by respectively. Here negative sign in (10) and (11) implies show that force is acting from outside that mean in outer most orbit. Since the pressure is applied from outside or surface of an atom then pressure exerted on n + 1 orbit is greater then pressure exerted on n orbit for constant force.
Now on subtracting Equation (10) from (11) we have, Now, from Equation (13) we have clearly, see that pressure different is directly related to different and inversely related to square product of distance from nucleus to electron.
Now, on putting the value from Equation (9) on Equation (14), we have, ( )( ) ( ) Since P n + 1 is greater than P n then P n + 1 -P n must be positive which is also depend up on the ( ) 1 n n E E + − of Equation (15) which is depend upon (r n + 1 -r n ).
It is possible because of the atom has space according to the Ruth-er forth scattering of an atom. Here we can press the electron for the certain radius because of repulsion of nuclear. In addition, Van Der Waals forces between atoms are depends upon the sized of atoms that is smaller the sized smaller the Van Der Waals force. Also on doping the material having the greater atomic number decrease attraction of the electron with the nucleus that is less amount of energy required to remove the electron from the surface of atom or materials. From the above Methodology, we can decrease the work function of the element or compound or materials.

Result and Conclusion
Hence, from the above relation (15), pressure, energy and orbit radius we can change the work function of material and make them work for all frequencies ranges. This helps to increase the efficiency of solar cell material or similar principle material. Once material is constructed or follows this principle, energy crisis should be ended forever. In other hand, we can also say that, same materials can be used for different range of frequencies and extracted energy from all ranges radiation. Hence such material can also solve the problem of energy where solar radiation is absent. R. C. Pageni et al.