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A new inner approach for differential subordinations

Published online by Cambridge University Press:  10 February 2023

Adam Lecko*
Affiliation:
Department of Complex Analysis, Faculty of Mathematics and Computer Science, University of Warmia and Mazury in Olsztyn, ul. Słoneczna 54, 10-710 Olsztyn, Poland ([email protected])
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Abstract

In this paper we introduce and examine the differential subordination of the form

\[ p(z)+zp'(z)\varphi(p(z),zp'(z))\prec h(z),\quad z\in\mathbb{D}:=\{z\in\mathbb{C}:|z|<1\}, \]
where $h$ is a convex univalent function with $0\in h(\mathbb {D}).$ The proof of the main result is based on the original lemma for convex univalent functions and offers a new approach in the theory. In particular, the above differential subordination leads to generalizations of the well-known Briot-Bouquet differential subordination. Appropriate applications among others related to the differential subordination of harmonic mean are demonstrated. Related problems concerning differential equations are indicated.

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Research Article
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Copyright © The Author(s), 2023. Published by Cambridge University Press on behalf of The Royal Society of Edinburgh

1. Introduction

Given $r>0,$ let $\mathbb {D}_r:=\{z\in \mathbb {C}: |z|< r\}$. Let $\mathbb {D}:=\mathbb {D}_1$ and $\mathbb {T}:=\{z\in \mathbb {C}:|z|=1\}.$ For $D$ being a domain in $\mathbb {C}$ let $\mathcal {H}(D)$ be the family of all analytic functions $f: D\rightarrow \mathbb {C}$ and $\mathcal {H}:=\mathcal {H}(\mathbb {D}).$ Let $\mathcal {A}$ be the subclass of $\mathcal {H}$ of $f$ normalized by $f(0)=0=f'(0)-1,$ and $\mathcal {S}$ be the subclass of $\mathcal {A}$ of univalent functions.

For $r\in (0,\,1)$ and $f\in \mathcal {H},$ let $f_r(z):=f(rz)$, $z\in \overline {\mathbb {D}}:=\{z\in \mathbb {C}:|z|\le 1\}.$ Clearly, each $f_r$ is analytic in $\overline {\mathbb {D}}.$

A function $f\in \mathcal {H}$ is said to be subordinate to a function $g\in \mathcal {H}$ if there exists $\omega \in \mathcal {H}$ such that $\omega (0)=0,$ $\omega (\mathbb {D})\subset \mathbb {D}$ and $f=g\circ \omega$ in $\mathbb {D}.$ We write then $f\prec g.$ If $g$ is univalent, then (e.g., [Reference Goodman3, Vol. I, p. 85])

(1.1)\begin{equation} f\prec g\Leftrightarrow \left(f(0)=g(0)\wedge f(\mathbb{D})\subset g(\mathbb{D})\right). \end{equation}

Given $\psi : \mathbb {C}^2\rightarrow \mathbb {C},$ let $\mathcal {H}[\psi ]$ be the subset of $\mathcal {H}$ of all $p$ such that a function $\mathbb {D} \ni z\mapsto \psi (p(z),\,zp'(z))$ is well-defined and analytic.

Let $\psi : \mathbb {C}^2\rightarrow \mathbb {C}$ and $h\in \mathcal {H}$ be univalent. We say that a function $p\in \mathcal {H}[\psi ]$ satisfies the first-order differential subordination and is called its solution if

(1.2)\begin{equation} \psi\left(p(z),zp'(z)\right)\prec h(z),\quad z\in\mathbb{D}. \end{equation}

If $q\in \mathcal {H}$ is a univalent function such that $p\prec q$ for all $p$ satisfying (1.2), then $q$ is called a dominant of (1.2). A dominant $\widetilde q$ is called the best dominant if $\widetilde q\prec q$ for all dominants $q$ of (1.2). Finding those $q$ for which the subordination (1.2) yields $p\prec q,$ in particular, $p\prec \widetilde q$, is the basis in the theory of differential subordinations. Further details and references can be found in the book of Miller and Mocanu [Reference Miller and Mocanu8].

The classical example of (1.2) is related to the arithmetic mean and has been studied by many authors (see e.g., [Reference Miller and Mocanu8, pp. 120–145]). Given $\varphi \in \mathcal {H}(D)$ and $\alpha \in [0,\,1],$ consider

(1.3)\begin{equation} p(z)+\alpha zp'(z)\varphi(p(z))\prec h(z),\quad z\in\mathbb{D}, \end{equation}

written equivalently as

\[ (1-\alpha)p(z)+\alpha(p(z)+zp'(z)\varphi(p(z)))\prec h(z),\quad z\in\mathbb{D}, \]

where $p\in \mathcal {H}$ with $p(\mathbb {D})\subset D.$ In particular, if $\alpha =1,$ $\delta,\,\gamma \in \mathbb {C},$ $\delta \not =0,$ $\varphi (w):=1/(\delta w+\gamma ),\,\ w\in D:=\mathbb {C}\setminus \{-\gamma /\delta \}$, then (1.3) reduces to

(1.4)\begin{equation} p(z)+\frac{zp'(z)}{\delta p(z)+\gamma}\prec h(z),\quad z\in\mathbb{D}, \end{equation}

which is known as the Briot-Bouquet differential subordination.

Let $\varphi : \mathbb {C}^2\rightarrow \mathbb {C},$ $p\in \mathcal {H}[\varphi ]$ and $h\in \mathcal {H}$ be a convex univalent function which means that $h$ maps univalently $\mathbb {D}$ onto a convex domain $h(\mathbb {D}).$ In this paper, we propose a study of the differential subordination of the form

(1.5)\begin{equation} p(z)+ zp'(z)\varphi\left(p(z),zp'(z)\right)\prec h(z),\quad z\in\mathbb{D}. \end{equation}

The case when $0\in \partial h(\mathbb {D})$ has been studied in [Reference Lecko5]. Let us remark that the case where 0 is a boundary point of $h(\mathbb {D})$ requires different methods of proofs than those when the origin is the interior point of $h(\mathbb {D}).$ The differential subordination (1.5) is a special case of (1.2), but it offers interesting applications. In particular, it generalizes the Briot-Bouquet differential subordination (1.4). In addition, we prove in a new way some recent results regarding the differential subordination related to the harmonic mean. The problem of the best dominant in the case where $h$ is a linear function is also discussed.

The proof of the main result is based on the original lemma 2.1 on convex univalent functions. Therefore, the proof of Theorem 2.4 is strictly analytical in nature, while until now in the proofs of analogous propositions, analytical arguments have been used in conjunction with geometric considerations (cf. [Reference Miller and Mocanu8]). By applying lemma 2.1, a series of theorems from the monographs [Reference Miller and Mocanu8]) underlying the theory of the differential subordinations can be proved again by using a purely analytical argumentation.

2. Main result

2.1

A function $h\in \mathcal {H}$ is said to be convex if it is univalent and $h(\mathbb {D})$ is a convex domain. Study [Reference Study12] (e.g., [Reference Pommerenke9, p. 44]) has shown that a function $h\in \mathcal {H}$ with $h'(0)\not =0$ is convex if, and only if,

\[ \operatorname{Re}\left\{1+\frac{zh''(z)}{h'(z)}\right\}>0,\quad z\in\mathbb{D}. \]

If $h$ is a convex function, then $h(\mathbb {D}_r)$ for every $r\in (0,\,1),$ is a convex domain (e.g., [Reference Duren2, p. 42], [Reference Hallenbeck and MacGregor4, p. 14]), so every $h_r,\, r\in (0,\,1),$ is convex function also. Let $\mathcal {S}^c$ be the class of all convex functions normalized by $h(0)=0.$ For $h\in \mathcal {S}^c$ the following inequality due to Sheil-Small [Reference Sheil-Small10] and Suffridge [Reference Suffridge13] (see also [Reference Pommerenke9, p. 44]) holds

(2.1)\begin{equation} \operatorname{Re}\left\{\frac{2\zeta h'(\zeta)}{h(\zeta)-h(z)}-\frac{\zeta+z}{\zeta-z}\right\}\ge 0,\quad z,\zeta\in\mathbb{D}. \end{equation}

The inequality (2.1) with $z=0$ reduces to the inequality

(2.2)\begin{equation} \operatorname{Re}\frac{\zeta h'(\zeta)}{h(\zeta)}>\frac12,\quad \zeta\in\mathbb{D}, \end{equation}

due to Marx [Reference Marx6] and Storhhäcker [Reference Strohhäcker11] (see also [Reference Pommerenke9, p. 45]), which means that $h$ is a starlike function of order $1/2$ (cf. [Reference Goodman3, p. 138]).

Let $\mathcal {Q}$ be the subclass of $\mathcal {S}^c$ of all convex functions analytic on $\overline {\mathbb {D}}$ with $h'(\zeta )\not =0$ at every $\zeta \in \mathbb {T}.$

We will now prove the lemma that will be used in the proof of the main theorem. This results is geometrically obvious.

Lemma 2.1 If $h\in \mathcal {Q},$ then

(2.3)\begin{equation} \operatorname{Re}\frac{h(z)-h(\zeta)}{\zeta h'(\zeta)}< 0,\quad z\in\mathbb{D},\ \zeta\in\mathbb{T}. \end{equation}

Proof. Since $h_r$ for every $r\in (0,\,1),$ is analytic on $\overline {\mathbb {D}}$ and convex in $\mathbb {D},$ from (2.1) it follows that for $z\in \mathbb {D}$ and $\zeta \in \mathbb {T},$

\begin{align*} & \operatorname{Re}\left\{ \frac{2\zeta h_r'(\zeta)}{h_r(\zeta)-h_r(z)}-\frac{\zeta+z}{\zeta-z}\right\}\\ & \quad=\operatorname{Re}\left\{ \frac{2r\zeta h'(r\zeta)}{h(r\zeta)-h(rz)}-\frac{r\zeta+rz}{r\zeta-rz}\right\}\\ & \quad=\operatorname{Re}\left\{ \frac{2u h'(u)}{h(u)-h(v)}-\frac{u+v}{u-v}\right\}\ge 0, \end{align*}

where $u:=r\zeta \in \mathbb {D}$ and $v:=rz\in \mathbb {D}.$ Hence and by the fact that $h_r(\zeta )\rightarrow h(\zeta )$ and $h_r'(\zeta )\rightarrow h'(\zeta )$ as $r\rightarrow 1^-,$ we deduce that

\[ \operatorname{Re}\frac{2\zeta h'(\zeta)}{h(\zeta)-h(z)}\ge \operatorname{Re}\frac{\zeta+z}{\zeta-z}=\frac{1-|z|^2}{|\zeta-z|^2}>0,\quad z\in\mathbb{D},\ \zeta\in\mathbb{T}, \]

which shows (2.3).

We need also the following lemma which is a special case of lemma 2.2d [Reference Miller and Mocanu8, p. 22].

Lemma 2.2 Let $h$ be an analytic univalent function in $\overline {\mathbb {D}},$ $p\in \mathcal {H}$ be a nonconstant function with $p(0)=h(0).$ If $p$ is not subordinate to $h,$ then there exist $z_0\in \mathbb {D}\setminus \{0\}$ and $\zeta _0\in \mathbb {T}$ such that $p(\mathbb {D}_{|z_0|})\subset h(\mathbb {D}),$

(2.4)\begin{equation} p(z_0)=h(\zeta_0) \end{equation}

and

(2.5)\begin{equation} z_0p'(z_0)=m\zeta_0h'(\zeta_0) \end{equation}

for some $m\ge 1.$

The theorem below follows directly from the Lindelöf Principle (e.g., [Reference Goodman3, Vol. I, p. 86]). However, it will be useful in proving the main theorem.

Theorem 2.3 Let $f,\,h\in \mathcal {H},$ $h$ be univalent and $f(0)=h(0).$ Then

(2.6)\begin{equation} f\prec h \end{equation}

if and only if for every $r\in (0,\,1),$

(2.7)\begin{equation} f_r\prec h_r. \end{equation}

Proof. Suppose that (2.6) holds. Then by the Lindelöf Principle (e.g., [Reference Goodman3, Vol. I, p. 86]) for every $r\in (0,\,1),$

(2.8)\begin{equation} f_r(\mathbb{D})=f(\mathbb{D}_r)\subset h(\mathbb{D}_r)=h_r(\mathbb{D}). \end{equation}

Since $f_r(0)=f(0)=h(0)=h_r(0)$ and every $h_r$ is univalent, from (1.1) and (2.8) it follows (2.7).

Suppose now that (2.7) holds for every $r\in (0,\,1).$ Then by (1.1) the inclusion (2.8) holds for every $r\in (0,\,1),$ and therefore

\[ f(\mathbb{D})=\bigcup_{r\in(0,1)}f(\mathbb{D}_r)\subset \bigcup_{r\in(0,1)}h(\mathbb{D}_r)=h(\mathbb{D}). \]

Hence and from (1.1) we obtain (2.6).

2.2

We now prove the main theorem of this paper. In the proof we apply lemma 2.1 and Theorem 2.3. Therefore the argumentation is purely analytical without using a geometrical property based on the behaviour of the normal vector to the boundary curve $\partial h(\mathbb {D}),$ standardly used in the theory (cf. [Reference Miller and Mocanu8]). In further discussion we present new type of the differential subordination generalizing the well known Briot-Bouquet differential subordination. The significance of Theorem 2.4 is emphasized also in the presented applications.

Theorem 2.4 Let $h$ be a convex function and $\varphi : \mathbb {C}^2\rightarrow \mathbb {C}$ be such that for each $m\ge 1$ a function

(2.9)\begin{equation} \mathbb{D}\ni z\mapsto \varphi(h(z),mzh'(z)) \end{equation}

is well-defined and analytic satisfying the condition

(2.10)\begin{equation} \operatorname{Re}\varphi(h(z),mzh'(z))\ge 0,\quad z\in\mathbb{D}. \end{equation}

If $p\in \mathcal {H}[\varphi ]$ with $p(0)=h(0),$ and

(2.11)\begin{equation} p(z)+zp'(z)\varphi(p(z),zp'(z))\prec h(z),\quad z\in\mathbb{D}, \end{equation}

then

(2.12)\begin{equation} p\prec h. \end{equation}

Proof. Note first that if $\operatorname {Re} \varphi (h(z_0),\,mz_0h'(z_0))=0$ for a certain $z_0\in \mathbb {D},$ then by the minimum principle for harmonic function $\operatorname {Re} \varphi (h(z),\,mzh'(z))=0$ for all $z\in \mathbb {D}$ and hence $\varphi (h(z),\,mzh'(z))=\mathrm {i} a$ for some $a\in \mathbb {R}$ and all $z\in \mathbb {D}.$

Let $p\in \mathcal {H}[\varphi ]$ with $p(0)=h(0).$ Define $\psi :\mathbb {D}\rightarrow \mathbb {C}$ as follows

(2.13)\begin{equation} \psi(z):=p(z)+zp'(z)\varphi(p(z),zp'(z)),\quad z\in\mathbb{D}. \end{equation}

Since $\psi (0)=p(0)=h(0),$ by Theorem 2.3 the condition (2.11) is equivalent to

(2.14)\begin{equation} \psi_r\prec h_r,\quad r\in(0,1). \end{equation}

On the contrary, suppose that $p$ is not subordinate to $h.$ By Theorem 2.3, there exists $r_0\in (0,\,1)$ such that $p_{r_0}$ is not subordinate to $h_{r_0}.$ Since $h_{r_0}$ is analytic in $\overline {\mathbb {D}},$ by lemma 2.2 there exist $z_0\in \mathbb {D}\setminus \{0\},$ $\zeta _0\in \mathbb {T}$ and $m\ge 1$ such that (2.4) and (2.5) hold with $p:=p_{r_0}$ and $h:=h_{r_0},$ i.e.,

(2.15)\begin{equation} p_{r_0}(z_0)=h_{r_0}(\zeta_0) \end{equation}

and

(2.16)\begin{equation} z_0p_{r_0}'(z_0)=m\zeta_0h_{r_0}'(\zeta_0). \end{equation}

Hence

(2.17)\begin{equation} \begin{aligned} \psi_{r_0}(z_0) & =\psi(r_0z_0)\\ & =p(r_0z_0)+r_0z_0p'(r_0z_0)\varphi(p(r_0z_0),r_0z_0p'(r_0z_0))\\ & =p_{r_0}(z_0)+z_0p_{r_0}'(z_0)\varphi(p_{r_0}(z_0),z_0p_{r_0}'(z_0))\\ & =h_{r_0}(\zeta_0)+m\zeta_0h_{r_0}'(\zeta_0)\varphi(h_{r_0}(\zeta_0),m\zeta_0h_{r_0}'(\zeta_0)). \end{aligned} \end{equation}

Moreover by (2.10),

(2.18)\begin{equation} \begin{aligned} \operatorname{Re} \varphi(h_{r_0}(\zeta_0),m\zeta_0h_{r_0}'(\zeta_0)) & =\operatorname{Re} \varphi(h(r_0\zeta_0),mr_0\zeta_0h'(r_0\zeta_0))\\ & =\operatorname{Re} \varphi(h(u_0),mu_0h'(u_0))\ge 0, \end{aligned} \end{equation}

where $u_0:=r_0\zeta _0\in \mathbb {D}.$ In view of (2.14), $\psi _{r_0}\prec h_{r_0}$, so $\psi _{r_0}(\mathbb {D})\subset h_{r_0}(\mathbb {D}).$ Thus $\psi _{r_0}(z_0)\in h_{r_0}(\mathbb {D})$ and therefore $\psi _{r_0}(z_0)=h_{r_0}(z_1)$ for some $z_1\in h_{r_0}(\mathbb {D}).$ Hence from (2.17) and (2.18) we get

\begin{align*} \operatorname{Re}\frac{h_{r_0}(z_1)-h_{r_0}(\zeta_0)}{\zeta_0h_{r_0}'(\zeta_0)}& =\operatorname{Re}\frac{\psi_{r_0}(z_0)-h_{r_0}(\zeta_0)}{\zeta_0h_{r_0}'(\zeta_0)}\\ & =m\operatorname{Re}\varphi(h_{r_0}(\zeta_0),m\zeta_0h_{r_0}'(\zeta_0))\ge 0. \end{align*}

Since $h_{r_0}\in \mathcal {Q},$ it follows that the above inequality contradicts (2.3) with $h:=h_{r_0},$ $z:=z_1$ and $\zeta :=\zeta _0.$ Thus we conclude that $\psi _{r_0}$ is not subordinate to $h_{r_0},$ which contradicts (2.14) and completes the proof.

In Theorem 2.4 instead of $\varphi$ we can put a function $\phi : D\rightarrow \mathbb {C}$ such that a function $\mathbb {D}\ni z\mapsto \phi (h(z))$ is well-defined and analytic satisfying the condition $\operatorname {Re}\phi (h(z))\ge 0$ for $z\in \mathbb {D}.$ Then we obtain the result due to Miller and Mocanu [Reference Miller and Mocanu7] (see also [Reference Miller and Mocanu8, Theorem 3.4a, p. 120]).

Corollary 2.5 [Reference Miller and Mocanu7]

Let $h$ be a convex function, $\phi \in \mathcal {H}(D)$ be such that $h(\mathbb {D})\subset D$ and

\[ \operatorname{Re}\phi(h(z))\ge 0,\quad z\in\mathbb{D}. \]

If $p\in \mathcal {H},$ $p(0)=h(0),$ $p(\mathbb {D})\subset D$ and

\[ p(z)+zp'(z)\phi(p(z))\prec h(z),\quad z\in\mathbb{D}, \]

then

\begin{align*} p\prec h. \end{align*}

In the following theorem the assumption (2.19) is based on the idea of [Reference Chunfang1] (see also [Reference Miller and Mocanu8, pp. 124–125]), where in the proof of the main result Löwner chains were used. Our argumentation is analogous to that in the proof of Theorem 2.4.

Theorem 2.6 Let $\varphi : \mathbb {C}^2\rightarrow \mathbb {C}$ and $p\in \mathcal {H}[\varphi ]$ be such that

(2.19)\begin{equation} \operatorname{Re} \varphi(p(z),zp'(z))\ge 0,\quad z\in\mathbb{D}. \end{equation}

If $h$ is a convex function with $h(0)=p(0)$ and

(2.20)\begin{equation} p(z)+zp'(z)\varphi(p(z),zp'(z))\prec h(z),\quad z\in\mathbb{D}, \end{equation}

then

(2.21)\begin{equation} p\prec h. \end{equation}

Proof. Let $\psi$ be defined as in (2.11). By Theorem 2.3 the condition (2.20) is equivalent to (2.14). On the contrary, suppose that $p$ is not subordinate to $h.$ As in the proof of Theorem 2.4, there exist $z_0\in \mathbb {D}\setminus \{0\},$ $\zeta _0\in \mathbb {T}$ and $m\ge 1$ such that (2.15) and (2.16) hold. Thus

(2.22)\begin{equation} \begin{aligned} \psi_{r_0}(z_0) & =\psi(r_0z_0)\\ & =p(r_0z_0)+r_0z_0p'(r_0z_0)\varphi(p(r_0z_0),r_0z_0p'(r_0z_0))\\ & =p_{r_0}(z_0)+z_0p_{r_0}'(z_0)\varphi(p(r_0z_0),r_0z_0p'(r_0z_0))\\ & =h_{r_0}(\zeta_0)+m\zeta_0h_{r_0}'(\zeta_0)\varphi(p(r_0z_0),r_0z_0p'(r_0z_0))\\ & =h_{r_0}(\zeta_0)+m\zeta_0h_{r_0}'(\zeta_0)\varphi(p(u_0),u_0p'(u_0)), \end{aligned} \end{equation}

where $u_0:=r_0z_0\in \mathbb {D}.$ In view of (2.14), $\psi _{r_0}\prec h_{r_0}$, so $\psi _{r_0}(\mathbb {D})\subset h_{r_0}(\mathbb {D}).$ Thus $\psi _{r_0}(z_0)\in h_{r_0}(\mathbb {D})$ and therefore $\psi _{r_0}(z_0)=h_{r_0}(z_1)$ for some $z_1\in\mathbb{D}.$ Hence from (2.22) and (2.19) it follows that

\begin{align*} \operatorname{Re}\frac{h_{r_0}(z_1)-h_{r_0}(\zeta_0)}{\zeta_0h_{r_0}'(\zeta_0)}& =\operatorname{Re}\frac{\psi_{r_0}(z_0)-h_{r_0}(\zeta_0)}{\zeta_0h_{r_0}'(\zeta_0)}\\ & =m\operatorname{Re}\varphi(p(u_0),u_0p'(u_0))\ge 0. \end{align*}

Since $h_{r_0}\in \mathcal {Q},$ it follows that the above inequality contradicts (2.3) with $h:=h_{r_0},$ $z:=z_1$ and $\zeta :=\zeta _0.$ Thus we conclude that $\psi _{r_0}$ is not subordinate to $h_{r_0},$ which contradicts (2.14), so (2.20) and completes the proof.

3. Special cases

3.1

We now discuss special cases of Theorem 2.4.

Corollary 3.1 Let $\beta \ge 0,$ $h\in \mathcal {S}^c,$ $\phi \in \mathcal {H}(D)$ be such that $h(\mathbb {D})\subset D$ and

(3.1)\begin{equation} \operatorname{Re} \phi(h(z))\ge 0,\quad z\in\mathbb{D}. \end{equation}

If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ $p(\mathbb {D})\subset D$ and

(3.2)\begin{equation} p(z)+zp'(z)\phi(p(z))+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\prec h(z),\quad z\in\mathbb{D}, \end{equation}

then

(3.3)\begin{equation} p\prec h. \end{equation}

Proof. Let $\beta \ge 0,$ $h\in \mathcal {S}^c$ and $\phi \in \mathcal {H}(D)$ be such that $h(\mathbb {D})\subset D.$ Define $\varphi :\mathbb {C}\times \mathbb {C}\rightarrow \mathbb {C}$ as

\[ \varphi(u,v):=\phi(u)+\beta\frac{v}{u},\quad (u,v)\in (D\setminus\{0\})\times \mathbb{C}. \]

Since $h(0)=0,$ $h(z)\not =0$ for $z\not =0$ and $h'(0)\not =0,$ it follows that

(3.4)\begin{equation} \lim_{z\to 0}\dfrac{zh'(z)}{h(z)}=1. \end{equation}

Thus the function

\[ \mathbb{D}\setminus\{0\}\ni z\mapsto \varphi(h(z),mzh'(z))=\phi(h(z))+\beta \dfrac{mzh'(z)}{h(z)} \]

has an analytic extension on $\mathbb {D}$ by setting $\phi (0)+\beta m$ at zero. Moreover by (2.2) and (3.1) for every $m\ge 1,$

(3.5)\begin{equation} \begin{aligned} & \operatorname{Re}\varphi(h(z),mzh'(z))\\ & =\operatorname{Re}\phi(h(z))+\beta m\operatorname{Re}\frac{zh'(z)}{h(z)}\ge \frac{\beta}{2}\ge 0,\quad z\in\mathbb{D}. \end{aligned} \end{equation}

Let $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\not =0$ and $p(\mathbb {D})\subset D.$ Because $p(0)=0,$ there exists a positive integer $k$ such that $p(z)=z^kq(z),\,\ z\in \mathbb {D},$ where $q\in \mathcal {H}$ and $q(0)\not =0.$ Hence and by the fact that $p(z)\not =0$ for $z\not =0,$ it follows that $q(z)\not =0$ for $z\in \mathbb {D}.$ Thus the function

\[ \mathbb{D}\ni z\mapsto \varphi(p(z),zp'(z))=\phi(p(z))+\beta \dfrac{zp'(z)}{p(z)} \]

has an analytic extension on $\mathbb {D}$ by setting $\phi (0)+\beta k$ at zero, i.e., $p\in \mathcal {H}[\varphi ].$ At the end note that

\begin{align*} & p(z)+zp'(z)\varphi\left(p(z),zp'(z)\right)\\ & =p(z)+zp'(z)\phi(p(z))+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2,\quad z\in\mathbb{D}. \end{align*}

Thus, the assumptions of Theorem 2.4 are satisfied, which ends the proof of the corollary.

For $\beta =0$ the above theorem reduces to Corollary 2.5, with the additional assumption that $h(0)=0$. In fact, this assumption is not required in Corollary 2.5.

For $\mathcal {H}(\mathbb {C})\ni \phi \equiv \alpha,$ where $\operatorname {Re} \alpha \ge 0,$ Corollary 3.1 takes the following form.

Corollary 3.2 Let $\alpha \in \mathbb {C},\,\ \operatorname {Re}\alpha \ge 0,$ $\beta \ge 0$ and $h\in \mathcal {S}^c.$ If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ and

(3.6)\begin{equation} p(z)+\alpha zp'(z)+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\prec h(z),\quad z\in\mathbb{D}, \end{equation}

then

\[ p\prec h. \]

For $\alpha =0$ from Corollary 3.2 we deduce

Corollary 3.3 Let $\beta \ge 0$ and $h\in \mathcal {S}^c.$ If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ and

\[ p(z)+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\prec h(z),\quad z\in\mathbb{D}, \]

then

\[ p\prec h. \]

The differential subordination (3.9), which is a special case of (3.2), is an interesting generalization of the Briot-Bouqet subordination. Briot-Bouquet differential subordination plays a fundamental role in the theory of the differential subordinations. We get it from (3.9) for $\beta =0$ (e.g. [Reference Miller and Mocanu8, pp. 80–105]). The following corollary follows from Corollary 3.1.

Corollary 3.4 Let $\beta \ge 0,$ $\delta,\,\gamma \in \mathbb {C},$ $\delta \not =0,$ and $h\in \mathcal {S}^c$ be such that

(3.7)\begin{equation} h(z)\not={-}\gamma/\delta,\quad z\in\mathbb{D}, \end{equation}

and

(3.8)\begin{equation} \operatorname{Re}\left(\delta h(z)+\gamma\right)> 0,\quad z\in\mathbb{D}. \end{equation}

If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ $p(z)\not =-\gamma /\delta$ for $z\in \mathbb {D},$ and

(3.9)\begin{equation} p(z)+\frac{zp'(z)}{\delta p(z)+\gamma}+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\prec h(z),\quad z\in\mathbb{D}, \end{equation}

then

\[ p\prec h. \]

Proof. Take

\[ \phi(w):=\frac{1}{\delta w+\gamma},\quad w\in D:=\mathbb{C}\setminus\{-\gamma/\delta\}. \]

Then by (3.7) the function $\phi \circ h$ is analytic in $\mathbb {D},$ and by (3.8),

\[ \operatorname{Re} \phi(h(z))=\operatorname{Re}\frac{1}{\delta h(z)+\gamma}> 0,\quad z\in\mathbb{D}, \]

and we apply Corollary 3.1.

In the same way as Corollary 3.4 the following result follows.

Corollary 3.5 Let $\beta \ge 0,$ $\delta,\,\gamma \in \mathbb {C},$ $\delta \not =0,$ and $h\in \mathcal {S}^c$ be such that

\[ \operatorname{Re}\left(\delta h(z)+\gamma\right)> 0,\quad z\in\mathbb{D}. \]

If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ and

\[ p(z)+zp'(z)(\delta p(z)+\gamma)+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\prec h(z),\quad z\in\mathbb{D}, \]

then

\[ p\prec h. \]

3.2

By selecting $h\in \mathcal {S}^c$ we can get a number of new results. It is natural to take into account the following convex functions keeping the origin fixed: for $M>0,$

\begin{align*} & h_1(z)=Mz,\quad h_2(z)=\frac{2Mz}{1-z},\quad z\in\mathbb{D},\\ & h_3(z)=\frac{M}{\pi}\log\frac{1+z}{1-z},\quad \log 1:=0,\ z\in\mathbb{D}. \end{align*}

Then Corollary 3.1 takes respectively the form

Corollary 3.6 Let $\beta \ge 0,$ $\phi \in \mathcal {H}(D)$ be such that $\mathbb {D}_M\subset D$ and

\[ \operatorname{Re} \phi(Mz)\ge 0,\quad z\in\mathbb{D}. \]

If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ $p(\mathbb {D})\subset D$ and

\[ \left|p(z)+zp'(z)\phi(p(z))+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\right|< M,\quad z\in\mathbb{D}, \]

then

\[ |p(z)|< M,\quad z\in\mathbb{D}. \]

Corollary 3.7 Let $\beta \ge 0,$ $\phi \in \mathcal {H}(D)$ be such that $A:=\{w\in \mathbb {C}: \operatorname {Re} w>-M\} \subset D$ and

\[ \operatorname{Re} \phi(w)\ge 0,\quad w\in A. \]

If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ $p(\mathbb {D})\subset D$ and

\[ \operatorname{Re}\left\{p(z)+zp'(z)\phi(p(z))+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\right\}>{-}M,\quad z\in\mathbb{D}, \]

then

\[ \operatorname{Re} p(z)>{-}M,\quad z\in\mathbb{D}. \]

Corollary 3.8 Let $\beta \ge 0,$ $\phi \in \mathcal {H}(D)$ be such that $A:=\{w\in \mathbb {C}: |\operatorname {Im} w|< M\} \subset D$ and

\[ \operatorname{Re} \phi(w)\ge 0,\quad w\in A. \]

If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ $p(\mathbb {D})\subset D$ and

\[ \left|\operatorname{Im}\left\{p(z)+zp'(z)\phi(p(z))+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\right\}\right|< M,\quad z\in\mathbb{D}, \]

then

\[ |\operatorname{Im} p(z)|< M,\quad z\in\mathbb{D}. \]

4. The best dominant

To find the best dominant of (2.12) is an interesting problem to study related to the theory of the differential equations. By applying Theorem 2.3e of [Reference Miller and Mocanu8] we can expect that the best dominant $\widetilde {q}$ of (1.5) should be a univalent solution of the differential equation

\[ p(z)+ zp'(z)\varphi\left(p(z),zp'(z)\right)=h(z),\quad z\in\mathbb{D}, \]

if such a solution exists. Here we restrict our interest to the differential subordination (3.6) with $h(z):=Mz,\,\ z\in \mathbb {D},$ where $M>0.$ For this purpose, we will find a univalent solution of the differential equation

(4.1)\begin{equation} q(z)+\alpha zq'(z)+\beta q(z)\left(\frac{zq'(z)}{q(z)}\right)^2=Mz,\quad z\in\mathbb{D}. \end{equation}

The following theorem provides a solution to this problem.

Theorem 4.1 Let $\alpha \in \mathbb {C},\,\ \operatorname {Re}\alpha \ge 0,\,\ \beta \ge 0$ and $M>0.$ If $p\in \mathcal {H},$ $p(0)=0,$ $p(z)\not =0$ for $z\in \mathbb {D}\setminus \{0\},$ and

(4.2)\begin{equation} p(z)+\alpha zp'(z)+\beta p(z)\left(\frac{zp'(z)}{p(z)}\right)^2\prec Mz,\quad z\in\mathbb{D}, \end{equation}

then

\[ p(z)\prec \frac{M}{1+\alpha+\beta}z=:\widetilde{q}(z),\quad z\in\mathbb{D}, \]

and $\widetilde {q}$ is the best dominant of (4.2).

Proof. We apply the technique of power series to find a univalent solution of (4.1) of the form

(4.3)\begin{equation} q(z)=\sum_{n=1}^\infty a_nz^n,\quad z\in\mathbb{D}. \end{equation}

Since $q$ is assumed to be univalent, we see that

(4.4)\begin{equation} a_1=q'(0)\not=0. \end{equation}

From (4.1) we equivalently have

\[ q^2(z)+\alpha zq(z)q'(z)+\beta z^2(q'(z))^2=Mzq(z),\quad z\in\mathbb{D}. \]

Hence using (4.3) we have

\begin{align*} & a_1^2z^2+2a_1a_2z^3+\left(2a_1a_3+a_2^2\right)z^4+\left(2a_1a_4+2a_2a_3\right)z^5+\dots\\ & \qquad+ \alpha\left[a_1z^2+3a_1a_2z^3+\left(4a_1a_3+2a_2^2\right)z^4+\left(5a_1a_4+5a_2a_3\right)z^5+\dots\right]\\ & \qquad+\beta\left[a_1^2z^2+4a_1a_2z^3+\left(6a_1a_3+4a_2^2\right)z^4+\left(8a_1a_4+12a_2a_3\right)z^5+\dots\right]\\ & \quad=M\left(a_1z^2+a_2z^3+a_3z^4+c_4z^5+\dots\right),\quad z\in\mathbb{D}. \end{align*}

Comparing coefficients we obtain

(4.5)\begin{equation} \begin{aligned} & a_1^2(1+\alpha+\beta)=Ma_1,\\ & a_1a_2(2+3\alpha+4\beta)=Ma_2,\\ & a_1a_3(2+4\alpha+6\beta)+a_2^2(1+2\alpha+4\beta)=Ma_3, \end{aligned} \end{equation}

and in general, for $n=2k-1,\,\ k\ge 2,$

(4.6)\begin{equation} \begin{aligned} & a_1a_{2k-2}\left[2+(2k-1)\alpha+2(2k-2)\beta\right]\\ & \quad+a_2a_{2k-3}\left[2+(2k-1)\alpha+2\cdot 2(2k-3)\beta \right]+\dots\\ & \quad+a_{k-1}a_k\left[2+(2k-1)\alpha+2(k-1)k\beta\right]=Ma_{2k-2}, \end{aligned} \end{equation}

and for $n=2k,\,\ k\ge 2,$

(4.7)\begin{equation} \begin{aligned} & a_1a_{2k-1}\left[2+2k\alpha+2(2k-1)\beta\right]\\ & \quad+a_2a_{2k-2}\left[2+2k\alpha+2\cdot 2(2k-2)a_2a_{2k-2}\right]+\dots\\ & \quad+a_{k-1}a_{k+1}\left[2+2k\alpha+2(k-1)(k+1)\beta\right]\\ & \quad+a_k^2\left[1+k\alpha+k^2\beta\right]=Ma_{2k-1}. \end{aligned} \end{equation}

Taking into account (4.4) from the first equation in (4.5) it follows that

(4.8)\begin{equation} a_1=\frac{M}{1+\alpha+\beta}. \end{equation}

This and the second equation in (4.5) yield $a_2=0.$ Substituting $a_2=0$ into the third equation in (4.5) in view of (4.8) we see that $a_3=0.$ In this way, by using mathematical induction we can prove that

(4.9)\begin{equation} a_2=a_3=\dots=a_{2k-3}=0 \end{equation}

and that the formula (4.6) reduces to

\[ a_1a_{2k-2}\left[2+(2k-1)\alpha+2(2k-2)\beta\right]=Ma_{2k-2}, \]

which in view of (4.8) yield $a_{2k-2}=0.$ Hence by using (4.9) the equation (4.7) reduces to

\[ a_1a_{2k-1}\left[2+2k\alpha+2(2k-1)\beta\right]=Ma_{2k-1}, \]

which in view of (4.8) yield $a_{2k-1}=0.$ Thus we proved that $a_n=0$ for all $n\ge 2.$ In this way by (4.3) and (4.8) we see that

\[ q(z)=\frac{M}{1+\alpha+\beta}z=:\widetilde{q}(z),\quad z\in\mathbb{D}, \]

is a unique univalent solution of (4.1). From Theorem 2.3e of [Reference Miller and Mocanu8] it follows that $\widetilde {q}$ is the best dominant of (4.2) which completes the proof of the lemma.

For $\alpha =1,$ $\beta =1$ and $M=1,$ the above result reduces to the well known special case of the first order Euler differential subordination (see [Reference Miller and Mocanu8, pp. 334–340]).

Corollary 4.2 If $p\in \mathcal {H},$ $p(0)=0$ and

\[ p(z)+zp'(z)\prec z,\quad z\in\mathbb{D}, \]

then

\[ p(z)\prec \frac12z=:\widetilde{q}(z),\quad z\in\mathbb{D}, \]

and $\widetilde {q}$ is the best dominant.

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